USPatent applicationPatented

Organic electroluminescent materials and devices

Granted 8 Nov 2022 · 1 office action

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Abstract

Imidazophenanthridine ligands and metal complexes are provided. The compounds exhibit improved stability through a linking substitution that links a nitrogen bonded carbon of an imidizole ring to a carbon on the adjacent fused aryl ring. The compounds may be used in OLEDs, particularly as emissive dopants in the emissive region in the OLEDs, providing devices with improved efficiency, stability, and manufacturing. In particular, the compounds provided herein may be used in blue devices having high efficiency.

Description

41 parts
›CROSS-REFERENCE TO RELATED APPLICATIONS

This application is a continuation of co-pending U.S. application Ser. No. 16/295,739, filed Mar. 7, 2019, which is (1) a continuation-in-part of U.S. application Ser. No. 14/933,684, filed Nov. 5, 2015, now U.S. Pat. No. 10,256,419, issued Apr. 9, 2019, which is a continuation-in-part of PCT application Serial No. PCT/US15/29269, filed on May 5, 2015, which claims priority to U.S. Provisional Application Ser. No. 61/990,239, filed on May 8, 2014, and to U.S. Provisional Application Ser. No. 62/082,970, filed on Nov. 21, 2014, (2) a continuation-in-part of U.S. application Ser. No. 15/291,381, filed Oct. 12, 2016, now U.S. Pat. No. 10,263,198, issued Apr. 16, 2019, (3) a continuation-in-part of U.S. application Ser. No. 15/399,724, filed Jan. 5, 2017, now U.S. Pat. No. 10,403,830, issued Sep. 3, 2019, which claims priority to U.S. Provisional Application No. 62/251,447, filed Nov. 5, 2015, (4) a continuation-in-part of U.S. application Ser. No. 15/825,798, filed Nov. 29, 2017, now U.S. Pat. No. 10,276,805, issued Apr. 30, 2019, (5) a continuation-in-part of U.S. application Ser. No. 15/948,031, filed Apr. 9, 2018, now U.S. Pat. No. 10,301,338, issued May 28, 2019, which claims priority to U.S. Provisional Application No. 62/488,107, filed Apr. 21, 2017, and U.S. Provisional Application No. 62/488,406, filed Apr. 21, 2017, the entire contents of which are incorporated herein by reference.

›FIELD OF THE INVENTION

The present invention generally relates to novel compounds, compositions comprising the same, and applications of the compounds and compositions, including organic electroluminescent devices comprising the compounds and/or compositions.

›JOINT RESEARCH AGREEMENT

The claimed inventions were made by, on behalf of, and/or in connection with one or more of the following parties to a joint university corporation research agreement: University of Southern California, and the Universal Display Corporation. The agreement was in effect on and before the date the claimed inventions were made, and the claimed inventions were made as a result of activities undertaken within the scope of the agreement.

›BACKGROUND OF THE INVENTION · 1 of 2

Generally, an OLED comprises at least one organic layer disposed between and electrically connected to an anode and a cathode. When a current is applied, the anode injects holes and the cathode injects electrons into the organic layer(s). The injected holes and electrons each migrate toward the oppositely charged electrode. When an electron and hole localize on the same molecule, an “exciton,” which is a localized electron-hole pair having an excited energy state, is formed. Light is emitted when the exciton relaxes via a photoemissive mechanism. In some cases, the exciton may be localized on an excimer or an exciplex. Non-radiative mechanisms, such as thermal relaxation, may also occur, but are generally considered undesirable.

The initial OLEDs used emissive molecules that emitted light from their singlet states (“fluorescence”) as disclosed, for example, in U.S. Pat. No. 4,769,292, which is incorporated by reference in its entirety. Fluorescent emission generally occurs in a time frame of less than 10 nanoseconds.

More recently, OLEDs having emissive materials that emit light from triplet states (“phosphorescence”) have been demonstrated. Baldo et al., “Highly Efficient Phosphorescent Emission from Organic Electroluminescent Devices,” Nature, vol. 395, 151-154, 1998; (“Baldo-I”) and Baldo et al., “Very high-efficiency green organic light-emitting devices based on electrophosphorescence,” Appl. Phys. Lett., vol. 75, No. 3, 4-6 (1999) (“Baldo-II”), which are incorporated by reference in their entireties. Phosphorescence may be referred to as a “forbidden” transition because the transition requires a change in spin states, and quantum mechanics indicates that such a transition is not favored. As a result, phosphorescence generally occurs in a time frame exceeding at least 10 nanoseconds, and typically greater than 100 nanoseconds. If the natural radiative lifetime of phosphorescence is too long, triplets may decay by a non-radiative mechanism, such that no light is emitted. Organic phosphorescence is also often observed in molecules containing heteroatoms with unshared pairs of electrons at very low temperatures. 2,2′-bipyridine is such a molecule. Non-radiative decay mechanisms are typically temperature dependent, such that an organic material that exhibits phosphorescence at liquid nitrogen temperatures typically does not exhibit phosphorescence at room temperature. But, as demonstrated by Baldo, this problem may be addressed by selecting phosphorescent compounds that do phosphoresce at room temperature. Representative emissive layers include doped or un-doped phosphorescent organometallic materials such as disclosed in U.S. Pat. Nos. 6,303,238; 6,310,360; 6,830,828 and 6,835,469; U.S. Patent Application Publication No. 2002-0182441; and WO 2002/074015.

Phosphorescence may be preceded by a transition from a triplet excited state to an intermediate non-triplet state from which the emissive decay occurs. For example, organic molecules coordinated to lanthanide elements often phosphoresce from excited states localized on the lanthanide metal. However, such materials do not phosphoresce directly from a triplet excited state but instead emit from an atomic excited state centered on the lanthanide metal ion. The europium diketonate complexes illustrate one group of these types of species.

Phosphorescence from triplets can be enhanced over fluorescence by confining, preferably through bonding, the organic molecule in close proximity to an atom of high atomic number. This phenomenon, called the heavy atom effect, is created by a mechanism known as spin-orbit coupling. Such a phosphorescent transition may be observed from an excited metal-to-ligand charge transfer (MLCT) state of an organometallic molecule such as tris(2-phenylpyridine)iridium(III).

Opto-electronic devices that make use of organic materials are becoming increasingly desirable for a number of reasons. Many of the materials used to make such devices are relatively inexpensive, so organic opto-electronic devices have the potential for cost advantages over inorganic devices. In addition, the inherent properties of organic materials, such as their flexibility, may make them well suited for particular applications such as fabrication on a flexible substrate. Examples of organic opto-electronic devices include organic light emitting devices (OLEDs), organic phototransistors, organic photovoltaic cells, and organic photodetectors. For OLEDs, the organic materials may have performance advantages over conventional materials. For example, the wavelength at which an organic emissive layer emits light may generally be readily tuned with appropriate dopants.

OLEDs make use of thin organic films that emit light when voltage is applied across the device. OLEDs are becoming an increasingly interesting technology for use in applications such as flat panel displays, illumination, and backlighting. Several OLED materials and configurations are described in U.S. Pat. Nos. 5,844,363, 6,303,238, and 5,707,745, which are incorporated herein by reference in their entirety.

One application for phosphorescent emissive molecules is a full color display. Industry standards for such a display call for pixels adapted to emit particular colors, referred to as “saturated” colors. In particular, these standards call for saturated red, green, and blue pixels. Alternatively, the OLED can be designed to emit white light. In conventional liquid crystal displays, emission from a white backlight is filtered using absorption filters to produce red, green and blue emission. The same technique can also be used with OLEDs. The white OLED can be either a single EML device or a stacked structure. Color may be measured using CIE coordinates, which are well known to the art.

One example of a green emissive molecule is tris(2-phenylpyridine) iridium, denoted Ir(ppy) 3 , which has the following structure:

In this, and later figures herein, we depict the dative bond from nitrogen to metal (here, Ir) as a straight line.

›BACKGROUND OF THE INVENTION · 2 of 2

As used herein, the term “organic” includes polymeric materials as well as small molecule organic materials that may be used to fabricate organic opto-electronic devices. “Small molecule” refers to any organic material that is not a polymer, and “small molecules” may actually be quite large. Small molecules may include repeat units in some circumstances. For example, using a long chain alkyl group as a substituent does not remove a molecule from the “small molecule” class. Small molecules may also be incorporated into polymers, for example as a pendent group on a polymer backbone or as a part of the backbone. Small molecules may also serve as the core moiety of a dendrimer, which consists of a series of chemical shells built on the core moiety. The core moiety of a dendrimer may be a fluorescent or phosphorescent small molecule emitter. A dendrimer may be a “small molecule,” and it is believed that all dendrimers currently used in the field of OLEDs are small molecules.

As used herein, “top” means furthest away from the substrate, while “bottom” means closest to the substrate. Where a first layer is described as “disposed over” a second layer, the first layer is disposed further away from substrate. There may be other layers between the first and second layer, unless it is specified that the first layer is “in contact with” the second layer. For example, a cathode may be described as “disposed over” an anode, even though there are various organic layers in between.

As used herein, “solution processible” means capable of being dissolved, dispersed, or transported in and/or deposited from a liquid medium, either in solution or suspension form.

A ligand may be referred to as “photoactive” when it is believed that the ligand directly contributes to the photoactive properties of an emissive material. A ligand may be referred to as “ancillary” when it is believed that the ligand does not contribute to the photoactive properties of an emissive material, although an ancillary ligand may alter the properties of a photoactive ligand.

As used herein, and as would be generally understood by one skilled in the art, a first “Highest Occupied Molecular Orbital” (HOMO) or “Lowest Unoccupied Molecular Orbital” (LUMO) energy level is “greater than” or “higher than” a second HOMO or LUMO energy level if the first energy level is closer to the vacuum energy level. Since ionization potentials (IP) are measured as a negative energy relative to a vacuum level, a higher HOMO energy level corresponds to an IP having a smaller absolute value (an IP that is less negative). Similarly, a higher LUMO energy level corresponds to an electron affinity (EA) having a smaller absolute value (an EA that is less negative). On a conventional energy level diagram, with the vacuum level at the top, the LUMO energy level of a material is higher than the HOMO energy level of the same material. A “higher” HOMO or LUMO energy level appears closer to the top of such a diagram than a “lower” HOMO or LUMO energy level.

As used herein, and as would be generally understood by one skilled in the art, a first work function is “greater than” or “higher than” a second work function if the first work function has a higher absolute value. Because work functions are generally measured as negative numbers relative to vacuum level, this means that a “higher” work function is more negative. On a conventional energy level diagram, with the vacuum level at the top, a “higher” work function is illustrated as further away from the vacuum level in the downward direction. Thus, the definitions of HOMO and LUMO energy levels follow a different convention than work functions.

More details on OLEDs, and the definitions described above, can be found in U.S. Pat. No. 7,279,704, which is incorporated herein by reference in its entirety.

›SUMMARY OF THE INVENTION

According to an aspect of the present disclosure, a compound having a structure (L A ) n ML m according to the following Formula 1 is disclosed:

In Formula 1, M is a metal having an atomic weight greater than 40, n has a value of at least 1 and m+n is the maximum number of ligands that may be attached to the metal M;

wherein A is a linking group having two to three linking atoms, wherein the linking atoms are each independently selected from the group consisting of C, Si, O, S, N, B or combinations thereof; wherein the linking atoms form at least one single bond between two linking atoms; wherein R 1a -R 1g are each independently selected from the group consisting of hydrogen, deuterium, alkyl, cycloalkyl, heteroalkyl, alkoxy, aryloxy, amino, silyl, alkenyl, cycloalkenyl, heteroalkenyl, alkynyl, aralkyl, CN, CF 3 , CO 2 R, C(O)R, C(O)NR 2 , NR 2 , NO 2 , OR, SR, SO 2 , SOR, SO 3 R, halo, aryl, heteroaryl, a heterocyclic group, and combinations thereof;

wherein each R is independently selected from the group consisting of hydrogen, deuterium, halo, alkyl, cycloalkyl, heteroalkyl, alkoxy, aryloxy, amino, silyl, alkenyl, cycloalkenyl, heteroalkenyl, alkynyl, aralkyl, aryl, heteroaryl, and combinations thereof;

wherein any one of the ring atoms to which R 1b to R 1g are attached may be replaced with a nitrogen atom,

wherein when the ring atom is replaced with a nitrogen atom the corresponding R group is not present; and wherein L is a substituted or unsubstituted cyclometallated ligand.

According to another aspect of the present disclosure, an organic light emitting device is disclosed. The OLED comprises an anode; a cathode; and an organic layer disposed between the anode and the cathode, wherein the organic layer comprises the compound having the structure according to Formula 1.

According to another aspect of the present disclosure, a formulation comprising the compound having the structure according to Formula 1 is also disclosed.

According to another aspect of the present disclosure, a compound having a structure according to Formula (1a) shown below is disclosed.

In Formula (1a), A is a linking group having two to three linking atoms, wherein the linking atoms are each independently selected from the group consisting of C, Si, O, S, N, B or combinations thereof;

wherein R ab , R ga , and R 1b to R 1f are each independently selected from the group consisting of hydrogen, deuterium, alkyl, cycloalkyl, heteroalkyl, alkoxy, aryloxy, amino, silyl, alkenyl, cycloalkenyl, heteroalkenyl, alkynyl, aralkyl, CN, CF 3 , CO 2 R, C(O)R, C(O)NR 2 , NR 2 , NO 2 , OR, SR, SO 2 , SOR, SO 3 R, halo, aryl, heteroaryl, a heterocyclic group, and combinations thereof; wherein each R is independently selected from the group consisting of hydrogen, deuterium, halo, alkyl, cycloalkyl, heteroalkyl, alkoxy, aryloxy, amino, silyl, alkenyl, cycloalkenyl, heteroalkenyl, alkynyl, aralkyl, aryl, heteroaryl, and combinations thereof; and

wherein any one of the ring atoms to which R ab , R ga , and R 1b to R 1f are attached may be replaced with a nitrogen atom, wherein when the ring atom is replaced with a nitrogen atom the corresponding R group is not present.

According to another aspect of the present disclosure, the compound of Formula (1a) can be a compound having a structure represented by structural formulas, Formula (2a) and Formula (2b) tethered together as defined below:

wherein A 1 and A 2 are each a first linking group having two to three linking atoms, wherein the linking atoms are each independently selected from the group consisting of C, Si, O, S, N, B and combinations thereof, and

wherein R ac , R gb , and R 2b to R 2f are each independently selected from the group consisting of hydrogen, deuterium, alkyl, cycloalkyl, heteroalkyl, alkoxy, aryloxy, amino, silyl, alkenyl, cycloalkenyl, heteroalkenyl, alkynyl, aralkyl, CN, CF 3 , CO 2 R, C(O)R, C(O)NR 2 , NR 2 , NO 2 , OR, SR, SO 2 , SOR, SO 3 R, halo, aryl, heteroaryl, a heterocyclic group, and combinations thereof; wherein the compound is tethered together via at least one second linking group formed between R ab and R ac and/or R ga and R gb , wherein at least one second linking group has one to three linking atoms and each linking atom is independently selected from the group consisting of B, N, P, O, S, Se, C, Si, Ge and combinations thereof; and any one of the ring atoms to which R 1b to R 1f and R 26 to R 2f are attached may be replaced with a nitrogen atom, wherein when the ring atom is replaced with a nitrogen atom the corresponding R group is not present.

According to another aspect of the present disclosure, the compound of Formula (Ia) can be a compound having a structure represented by Formula (3a) shown below:

wherein L and L are each independently selected from the group consisting of a single bond, BR 1 , NR 1 , PR 1 , O, S, Se, C═O, S═O, SO 2 , CR 1 R 2 , SiR 1 R 2 , and GeR 1 R 2 ;

wherein R 3a to R 3f , are each independently selected from the group consisting of hydrogen, deuterium, alkyl, cycloalkyl, heteroalkyl, alkoxy, aryloxy, amino, silyl, alkenyl, cycloalkenyl, heteroalkenyl, alkynyl, aralkyl, CN, CF 3 , CO 2 R, C(O)R, C(O)NR 2 , NR 2 , NO 2 , OR, SR, SO 2 , SOR, SO 3 R, halo, aryl, heteroaryl, a heterocyclic group, and combinations thereof;

wherein each R 1 and R 2 is independently selected from the group consisting of hydrogen, deuterium, halo, alkyl, cycloalkyl, heteroalkyl, alkoxy, aryloxy, amino, silyl, alkenyl, cycloalkenyl, heteroalkenyl, alkynyl, aralkyl, aryl, heteroaryl, and combinations thereof;

wherein any two adjacent R 1f , R 3a , R 3c , R 3d , R 1 and R 2 are optionally joined to form a ring; wherein L 2 and R 1f , L 2 and R 3a , or L 2 and both R 1f and R 3a are optionally joined to form one or more rings; and wherein L 3 and R 3c , L 3 and R 3d , or L 3 and both R 3c and R 3d are optionally joined to form one or more rings.

›BRIEF DESCRIPTION OF THE DRAWINGS

The foregoing summary, as well as the following detailed description of exemplary embodiments of the compounds, compositions and devices in accordance with the present invention, will be better understood when read in conjunction with the appended drawings of exemplary embodiments. It should be understood, however, that the invention is not limited to the precise arrangements and instrumentalities shown.

In the drawings:

FIG. 1 shows an exemplary organic light emitting device 100 ; and

FIG. 2 illustrates an exemplary organic light emitting device 200 according to the present disclosure.

FIGS. 3 a and 3 b illustrate a computational model of minimized bond-broken geometry (top) and minimized non-bond broken geometry (bottom) for comparative example 1.

FIG. 4 illustrates a MALDI negative mode mass spectrum for comparative compound 4. The highest intensity peak corresponds to fragmentation of the imidazole ring.

FIG. 5 illustrates the x-ray crystal structure of 3,4-dihydrodibenzo[b,ij]imidazo[2,1,5-de]quinolizine.

FIG. 6 illustrates the x-ray crystal structure of 3,3-dimethyl-3,4-dihydro-1,2a1-diaza-3-silabenzo[fg]aceanthrylene.

FIG. 7 depicts Emission spectrum of Compound 49 in 77 K and room temperature 2-methyl THF solvent and solid state PMMA matrix.

›DETAILED DESCRIPTION · 1 of 16

Generally, an OLED comprises at least one organic layer disposed between and electrically connected to an anode and a cathode. When a current is applied, the anode injects holes and the cathode injects electrons into the organic layer(s). The injected holes and electrons each migrate toward the oppositely charged electrode. When an electron and hole localize on the same molecule, an “exciton,” which is a localized electron-hole pair having an excited energy state, is formed. Light is emitted when the exciton relaxes via a photoemissive mechanism. In some cases, the exciton may be localized on an excimer or an exciplex. Non-radiative mechanisms, such as thermal relaxation, may also occur, but are generally considered undesirable.

The initial OLEDs used emissive molecules that emitted light from their singlet states (“fluorescence”) as disclosed, for example, in U.S. Pat. No. 4,769,292, which is incorporated by reference in its entirety. Fluorescent emission generally occurs in a time frame of less than 10 nanoseconds.

More recently, OLEDs having emissive materials that emit light from triplet states (“phosphorescence”) have been demonstrated. Baldo et al., “Highly Efficient Phosphorescent Emission from Organic Electroluminescent Devices,” Nature, vol. 395, 151-154, 1998; (“Baldo-I”) and Baldo et al., “Very high-efficiency green organic light-emitting devices based on electrophosphorescence,” Appl. Phys. Lett., vol. 75, No. 3, 4-6 (1999) (“Baldo-II”), which are incorporated by reference in their entireties. Phosphorescence is described in more detail in U.S. Pat. No. 7,279,704 at cols. 5-6, which are incorporated by reference.

Imidazophenanthridines are useful ligands that can provide 460 nm emission when ligated to both platinum and iridium metals. Phosphorescent imidazophenanthridine complexes can provide deep blue emission with tunable photoluminescent quantum yield ranging from nearly zero to unity. Unfortunately, the device lifetime is limited for both iridium and platinum based blue-emitting complexes. We provide a strategy herein to improve the stability of the imidazophenanthridine ligand by addressing a bond on the ligand that is shown by computational theory, mass spec fragmentation analysis, and photooxidative studies to be a weak bond due to polycyclic ring strain and electronic structure.

FIG. 1 shows an organic light emitting device 100 . The figures are not necessarily drawn to scale. Device 100 may include a substrate 110 , an anode 115 , a hole injection layer 120 , a hole transport layer 125 , an electron blocking layer 130 , an emissive layer 135 , a hole blocking layer 140 , an electron transport layer 145 , an electron injection layer 150 , a protective layer 155 , a cathode 160 , and a barrier layer 170 . Cathode 160 is a compound cathode having a first conductive layer 162 and a second conductive layer 164 . Device 100 may be fabricated by depositing the layers described, in order. The properties and functions of these various layers, as well as example materials, are described in more detail in U.S. Pat. No. 7,279,704 at cols. 6-10, which are incorporated by reference.

More examples for each of these layers are available. For example, a flexible and transparent substrate-anode combination is disclosed in U.S. Pat. No. 5,844,363, which is incorporated by reference in its entirety. An example of a p-doped hole transport layer is m-MTDATA doped with F 4 -TCNQ at a molar ratio of 50:1, as disclosed in U.S. Patent Application Publication No. 2003/0230980, which is incorporated by reference in its entirety. Examples of emissive and host materials are disclosed in U.S. Pat. No. 6,303,238 to Thompson et al., which is incorporated by reference in its entirety. An example of an n-doped electron transport layer is BPhen doped with Li at a molar ratio of 1:1, as disclosed in U.S. Patent Application Publication No. 2003/0230980, which is incorporated by reference in its entirety. U.S. Pat. Nos. 5,703,436 and 5,707,745, which are incorporated by reference in their entireties, disclose examples of cathodes including compound cathodes having a thin layer of metal such as Mg:Ag with an overlying transparent, electrically-conductive, sputter-deposited ITO layer. The theory and use of blocking layers is described in more detail in U.S. Pat. No. 6,097,147 and U.S. Patent Application Publication No. 2003/0230980, which are incorporated by reference in their entireties. Examples of injection layers are provided in U.S. Patent Application Publication No. 2004/0174116, which is incorporated by reference in its entirety. A description of protective layers may be found in U.S. Patent Application Publication No. 2004/0174116, which is incorporated by reference in its entirety.

FIG. 2 shows an inverted OLED 200 . The device includes a substrate 210 , a cathode 215 , an emissive layer 220 , a hole transport layer 225 , and an anode 230 . Device 200 may be fabricated by depositing the layers described, in order. Because the most common OLED configuration has a cathode disposed over the anode, and device 200 has cathode 215 disposed under anode 230 , device 200 may be referred to as an “inverted” OLED. Materials similar to those described with respect to device 100 may be used in the corresponding layers of device 200 . FIG. 2 provides one example of how some layers may be omitted from the structure of device 100 .

The simple layered structure illustrated in FIGS. 1 and 2 is provided by way of non-limiting example, and it is understood that embodiments of the invention may be used in connection with a wide variety of other structures. The specific materials and structures described are exemplary in nature, and other materials and structures may be used. Functional OLEDs may be achieved by combining the various layers described in different ways, or layers may be omitted entirely, based on design, performance, and cost factors. Other layers not specifically described may also be included. Materials other than those specifically described may be used. Although many of the examples provided herein describe various layers as comprising a single material, it is understood that combinations of materials, such as a mixture of host and dopant, or more generally a mixture, may be used. Also, the layers may have various sublayers. The names given to the various layers herein are not intended to be strictly limiting. For example, in device 200 , hole transport layer 225 transports holes and injects holes into emissive layer 220 , and may be described as a hole transport layer or a hole injection layer. In one embodiment, an OLED may be described as having an “organic layer” disposed between a cathode and an anode. This organic layer may comprise a single layer, or may further comprise multiple layers of different organic materials as described, for example, with respect to FIGS. 1 and 2 .

›DETAILED DESCRIPTION · 2 of 16

Structures and materials not specifically described may also be used, such as OLEDs comprised of polymeric materials (PLEDs) such as disclosed in U.S. Pat. No. 5,247,190 to Friend et al., which is incorporated by reference in its entirety. By way of further example, OLEDs having a single organic layer may be used. OLEDs may be stacked, for example as described in U.S. Pat. No. 5,707,745 to Forrest et al, which is incorporated by reference in its entirety. The OLED structure may deviate from the simple layered structure illustrated in FIGS. 1 and 2 . For example, the substrate may include an angled reflective surface to improve out-coupling, such as a mesa structure as described in U.S. Pat. No. 6,091,195 to Forrest et al., and/or a pit structure as described in U.S. Pat. No. 5,834,893 to Bulovic et al., which are incorporated by reference in their entireties.

Unless otherwise specified, any of the layers of the various embodiments may be deposited by any suitable method. For the organic layers, preferred methods include thermal evaporation, ink-jet, such as described in U.S. Pat. Nos. 6,013,982 and 6,087,196, which are incorporated by reference in their entireties, organic vapor phase deposition (OVPD), such as described in U.S. Pat. No. 6,337,102 to Forrest et al., which is incorporated by reference in its entirety, and deposition by organic vapor jet printing (OVJP), such as described in U.S. Pat. No. 7,431,968, which is incorporated by reference in its entirety. Other suitable deposition methods include spin coating and other solution based processes. Solution based processes are preferably carried out in nitrogen or an inert atmosphere. For the other layers, preferred methods include thermal evaporation. Preferred patterning methods include deposition through a mask, cold welding such as described in U.S. Pat. Nos. 6,294,398 and 6,468,819, which are incorporated by reference in their entireties, and patterning associated with some of the deposition methods such as ink-jet and OVJD. Other methods may also be used. The materials to be deposited may be modified to make them compatible with a particular deposition method. For example, substituents such as alkyl and aryl groups, branched or unbranched, and preferably containing at least 3 carbons, may be used in small molecules to enhance their ability to undergo solution processing. Substituents having 20 carbons or more may be used, and 3-20 carbons is a preferred range. Materials with asymmetric structures may have better solution processability than those having symmetric structures, because asymmetric materials may have a lower tendency to recrystallize. Dendrimer substituents may be used to enhance the ability of small molecules to undergo solution processing.

Devices fabricated in accordance with embodiments of the present invention may further optionally comprise a barrier layer. One purpose of the barrier layer is to protect the electrodes and organic layers from damaging exposure to harmful species in the environment including moisture, vapor and/or gases, etc. The barrier layer may be deposited over, under or next to a substrate, an electrode, or over any other parts of a device including an edge. The barrier layer may comprise a single layer, or multiple layers. The barrier layer may be formed by various known chemical vapor deposition techniques and may include compositions having a single phase as well as compositions having multiple phases. Any suitable material or combination of materials may be used for the barrier layer. The barrier layer may incorporate an inorganic or an organic compound or both. The preferred barrier layer comprises a mixture of a polymeric material and a non-polymeric material as described in U.S. Pat. No. 7,968,146, PCT Pat. Application Nos. PCT/US2007/023098 and PCT/US2009/042829, which are herein incorporated by reference in their entireties. To be considered a “mixture”, the aforesaid polymeric and non-polymeric materials comprising the barrier layer should be deposited under the same reaction conditions and/or at the same time. The weight ratio of polymeric to non-polymeric material may be in the range of 95:5 to 5:95. The polymeric material and the non-polymeric material may be created from the same precursor material. In one example, the mixture of a polymeric material and a non-polymeric material consists essentially of polymeric silicon and inorganic silicon.

Devices fabricated in accordance with embodiments of the invention can be incorporated into a wide variety of electronic component modules (or units) that can be incorporated into a variety of electronic products or intermediate components. Examples of such electronic products or intermediate components include display screens, lighting devices such as discrete light source devices or lighting panels, etc. that can be utilized by the end-user product manufacturers. Such electronic component modules can optionally include the driving electronics and/or power source(s). Devices fabricated in accordance with embodiments of the invention can be incorporated into a wide variety of consumer products that have one or more of the electronic component modules (or units) incorporated therein. Such consumer products would include any kind of products that include one or more light source(s) and/or one or more of some type of visual displays. Some examples of such consumer products include flat panel displays, computer monitors, medical monitors, televisions, billboards, lights for interior or exterior illumination and/or signaling, heads-up displays, fully or partially transparent displays, flexible displays, laser printers, telephones, cell phones, tablets, phablets, personal digital assistants (PDAs), wearable devices, laptop computers, digital cameras, camcorders, viewfinders, micro-displays, 3-D displays, vehicles, a large area wall, theater or stadium screen, or a sign. Various control mechanisms may be used to control devices fabricated in accordance with the present invention, including passive matrix and active matrix. Many of the devices are intended for use in a temperature range comfortable to humans, such as 18 degrees C. to 30 degrees C., and more preferably at room temperature (20-25 degrees C.), but could be used outside this temperature range, for example, from −40 degree C. to +80 degree C.

›DETAILED DESCRIPTION · 3 of 16

The materials and structures described herein may have applications in devices other than OLEDs. For example, other optoelectronic devices such as organic solar cells and organic photodetectors may employ the materials and structures. More generally, organic devices, such as organic transistors, may employ the materials and structures.

The term “halo,” “halogen,” or “halide” as used herein includes fluorine, chlorine, bromine, and iodine.

The term “alkyl” as used herein means a straight or branched chain saturated acyclic hydrocarbon radical, which may optionally be substituted with any suitable substituent. Accordingly, an alkyl radical in accordance with the present invention can comprise any combination of primary, secondary, tertiary and quaternary carbon atoms. Exemplary alkyl radicals include, but are not limited to, C 1 -C 20 -alkyl, C 1 -C 18 -alkyl, C 1 -C 16 -alkyl, C 1 -C 14 -alkyl, C 1 -C 12 -alkyl, C 1 -C 10 -alkyl, C 1 -C 8 -alkyl, C 1 -C 6 -alkyl, C 1 -C 4 -alkyl, C 1 -C 3 -alkyl, and C 2 -alkyl. Specific examples include methyl, ethyl, 1-propyl, 2-propyl, 2-methyl-1-propyl, 1-butyl, 2-butyl, t-butyl, n-octyl, n-decyl, and n-hexadecyl.

As used herein, the term “heteroalkyl” refers to an alkyl group as described herein in which one or more carbon atoms is replaced by a heteroatom. Suitable heteroatoms include oxygen, sulfur, nitrogen, phosphorus, and the like. Examples of heteroalkyl groups include, but are not limited to, alkoxy, amino, thioester, poly(ethylene glycol), and alkyl-substituted amino.

The term “cycloalkyl” as used herein contemplates cyclic alkyl radicals. Preferred cycloalkyl groups are those containing 3 to 7 carbon atoms and includes cyclopropyl, cyclopentyl, cyclohexyl, and the like. Additionally, the cycloalkyl group may be optionally substituted.

As used herein, the term “alkenyl” means acyclic branched or unbranched hydrocarbon radical having one or more carbon-carbon double bonds. Exemplary alkenyl radicals include, but are not limited to, C 1 -C 20 -alkenyl radical, C 2 -C 18 -alkenyl radical, C 2 -C 16 -alkenyl radical, C 2 -C 14 -alkenyl radical, C 2 -C 12 -alkenyl radical, C 2 -C 10 -alkenyl radical, C 2 -C 8 -alkenyl radical, C 2 -C 6 -alkenyl radical, C 2 -C 4 -alkenyl radical, C 2 -C 3 -alkenyl radical, and C 2 -alkenyl radical. Specific examples include, but are not limited to, ethylenyl, propylenyl, 1-butenyl, 2-butenyl, isobutylenyl, 1-pentenyl, 2-pentenyl, 3-methyl-1-butenyl, 2-methyl-2-butenyl, and 2,3-dimethyl-2-butenyl.

As used herein, the term “alkylene” means an optionally substituted saturated straight or branched chain hydrocarbon radical. Exemplary alkylene radicals include, but are not limited to, C 1 -C 20 -alkylene, C 2 -C 18 -alkylene, C 2 -C 16 -alkylene, C 2 -C 14 -alkylene, C 2 -C 12 -alkylene, C 2 -C 10 -alkylene, C 2 -C 8 -alkylene, C 2 -C 6 -alkylene, C 2 -C 4 -alkylene, C 2 -C 3 -alkylene, and C 2 -alkylene. Specific examples of alkylene include, but are not limited to, methylene, dimethylene, and trimethylene.

As used herein, the term “alkynyl” means an acyclic branched or unbranched hydrocarbon having at least one carbon-carbon triple bond. Exemplary alkylene radicals include, but are not limited to, C 1 -C 20 -alkynyl radical, C 2 -C 18 -alkynyl radical, C 2 -C 16 -alkynyl radical, C 2 -C 14 -alkynyl radical, C 2 -C 12 -alkynyl radical, C 2 -C 10 -alkynyl radical, C 2 -C 8 -alkynyl radical, C 2 -C 6 -alkynyl radical, C 2 -C 4 -alkynyl radical, C 2 -C 3 -alkynyl radical, and C 2 -alkynyl radical. Specific examples of alkynyl include, but are not limited to, propargyl, and 3-pentynyl, acetylenyl, propynyl, 1-butynyl, 2-butynyl, 1-pentynyl, 2-pentynyl, and 3-methyl-1-butynyl.

As used herein, the term “aralkyl” means one or more aryl radicals as defined herein attached through an alkyl bridge (e.g., -alkyl-(aryl) j , wherein j is 1, 2 or 3). Specific examples of aralkyl include, but are not limited to, benzyl (—CH 2 -phenyl, i.e., Bn), diphenyl methyl (—CH-(phenyl) 2 ) and trityl (—C-(phenyl) 3 ). Additionally, the aralkyl group may be optionally substituted.

Unless stated otherwise, as used herein, the term “heterocycle” and variants of the term, including “heterocyclic group” and “heterocyclyl,” means an optionally substituted monocyclic or polycyclic ring system having as ring members atoms of at least two different elements and wherein the monocyclic or polycyclic ring system is either saturated, unsaturated or aromatic. In some embodiments, heterocyle comprises carbon atoms and at least one heteroatom. In some embodiments, heterocyle comprises carbon atoms and at least one heteroatom selected from nitrogen, oxygen, silicon, selenium, and sulfur, and wherein the nitrogen, oxygen, silicon, selenium, and sulfur heteroatoms may be optionally oxidized, and the nitrogen heteroatom may be optionally quaternized. Examples of heterocycle include, but are not limited to, furyl, benzofuranyl, thiophenyl, benzothiophenyl, pyrrolyl, indolyl, isoindolyl, azaindolyl, pyridyl, quinolinyl, isoquinolinyl, oxazolyl, isooxazolyl, benzoxazolyl, pyrazolyl, imidazolyl, benzimidazolyl, thiazolyl, benzothiazolyl, isothiazolyl, pyridazinyl, pyrimidinyl, pyrazinyl, triazinyl, cinnolinyl, phthalazinyl, and quinazolinyl. Thus, in addition to the aromatic heteroaryls listed above, heterocycles also include (but are not limited to) morpholinyl, pyrrolidinonyl, pyrrolidinyl, piperizinyl, piperidinyl, hydantoinyl, valerolactamyl, oxiranyl, oxetanyl, tetrahydrofuranyl, tetrahydropyranyl, tetrahydropyridinyl, tetrahydroprimidinyl, tetrahydrothiophenyl, tetrahydrothiopyranyl, tetrahydropyrimidinyl, tetrahydrothiophenyl, and tetrahydrothiopyranyl.

As used herein, the term “aryl” means an optionally substituted monocyclic or polycyclic aromatic hydrocarbon. Specific examples of aryl include, but are not limited to, phenyl, phenyl, 4-methylphenyl, 2,6-dimethylphenyl, naphthyl, anthracenyl, and phenanthrenyl. The term “aryl” or “aromatic group” as used herein contemplates single-ring groups and polycyclic ring systems. The polycyclic rings may have two or more rings in which two carbons are common to two adjoining rings (the rings are “fused”) wherein at least one of the rings is aromatic, e.g., the other rings can be cycloalkyls, cycloalkenyls, aryl, heterocycles, and/or heteroaryls. Additionally, the aryl group may be optionally substituted.

›DETAILED DESCRIPTION · 4 of 16

As used herein, the term “heteroaryl” means an optionally substituted monocyclic or polycyclic aromatic hydrocarbon having at least one heteroatom and at least one carbon atom. In some embodiments, the at least one heteroatom is selected from nitrogen, oxygen, silicon, selenium, and sulfur. Specific examples of heteroaryl include, but are not limited to, furyl, benzofuranyl, thiophenyl, benzothiophenyl, pyrrolyl, indolyl, isoindolyl, azaindolyl, pyridyl, quinolinyl, isoquinolinyl, oxazolyl, isooxazolyl, benzoxazolyl, pyrazolyl, imidazolyl, benzimidazolyl, thiazolyl, benzothiazolyl, isothiazolyl, pyridazinyl, pyrimidinyl, pyrazinyl, triazinyl, cinnolinyl, phthalazinyl, and quinazolinyl.

The alkyl, cycloalkyl, alkenyl, alkynyl, aralkyl, heterocyclic group, aryl, and heteroaryl may be optionally substituted with one or more substituents selected from the group consisting of hydrogen, deuterium, halogen, alkyl, cycloalkyl, heteroalkyl, arylalkyl, alkoxy, aryloxy, amino, cyclic amino, silyl, alkenyl, cycloalkenyl, heteroalkenyl, alkynyl, aryl, heteroaryl, acyl, carbonyl, carboxylic acid, ether, ester, nitrile, isonitrile, sulfanyl, sulfinyl, sulfonyl, phosphino, and combinations thereof.

The terms “substituted” and “substitution” refer to a substituent other than H that is bonded to the relevant position, e.g., a carbon or nitrogen. For example, when R 1 represents mono-substitution, then one R 1 must be other than H (i.e., a substitution). Similarly, when R 1 represents di-substitution, then two of R 1 must be other than H. Similarly, when R 1 represents no substitution, R 1 , for example, can be a hydrogen for available valencies of ring atoms, as in carbon atoms for benzene and the nitrogen atom in pyrrole, or simply represents nothing for ring atoms with fully filled valencies, e.g., the nitrogen atom in pyridine. The maximum number of substitutions possible in a ring structure will depend on the total number of available valencies in the ring atoms. As used herein, “combinations thereof” indicates that one or more members of the applicable list are combined to form a known or chemically stable arrangement that one of ordinary skill in the art can envision from the applicable list. For example, an alkyl and deuterium can be combined to form a partial or fully deuterated alkyl group; a halogen and alkyl can be combined to form a halogenated alkyl substituent; and a halogen, alkyl, and aryl can be combined to form a halogenated arylalkyl. In one instance, the term substitution includes a combination of two to four of the listed groups. In another instance, the term substitution includes a combination of two to three groups. In yet another instance, the term substitution includes a combination of two groups. Preferred combinations of substituent groups are those that contain up to fifty atoms that are not hydrogen or deuterium, or those which include up to forty atoms that are not hydrogen or deuterium, or those that include up to thirty atoms that are not hydrogen or deuterium. In many instances, a preferred combination of substituent groups will include up to twenty atoms that are not hydrogen or deuterium.

The “aza” designation in the fragments described herein, i.e. aza-dibenzofuran, aza-dibenzothiophene, etc. means that one or more of the C—H groups in the respective aromatic ring can be replaced by a nitrogen atom, for example, and without any limitation, azatriphenylene encompasses both dibenzo[f,h]quinoxaline and dibenzo[f,h]quinoline. One of ordinary skill in the art can readily envision other nitrogen analogs of the aza-derivatives described above, and all such analogs are intended to be encompassed by the terms as set forth herein.

It is to be understood that when a molecular fragment is described as being a substituent or otherwise attached to another moiety, its name may be written as if it were a fragment (e.g. phenyl, phenylene, naphthyl, dibenzofuryl) or as if it were the whole molecule (e.g. benzene, naphthalene, dibenzofuran). As used herein, these different ways of designating a substituent or attached fragment are considered to be equivalent.

As used herein, and as would be generally understood by one skilled in the art, a first “Highest Occupied Molecular Orbital” (HOMO) or “Lowest Unoccupied Molecular Orbital” (LUMO) energy level is “greater than” or “higher than” a second HOMO or LUMO energy level if the first energy level is closer to the vacuum energy level. Since ionization potentials (IP) are measured as a negative energy relative to a vacuum level, a higher HOMO energy level corresponds to an IP having a smaller absolute value (an IP that is less negative). Similarly, a higher LUMO energy level corresponds to an electron affinity (EA) having a smaller absolute value (an EA that is less negative). On a conventional energy level diagram, with the vacuum level at the top, the LUMO energy level of a material is higher than the HOMO energy level of the same material. A “higher” HOMO or LUMO energy level appears closer to the top of such a diagram than a “lower” HOMO or LUMO energy level.

As used herein, the term “triplet energy” refers to an energy corresponding to the highest energy feature discernable in the phosphorescence spectrum of a given material. The highest energy feature is not necessarily the peak having the greatest intensity in the phosphorescence spectrum, and could, for example, be a local maximum of a clear shoulder on the high energy side of such a peak.

According to an aspect of the present disclosure, a compound having a structure (L A ) n ML m according to Formula 1 shown below is disclosed.

In Formula I, M is a metal having an atomic weight greater than 40, n has a value of at least 1 and m+n is the maximum number of ligands that may be attached to the metal;

wherein A is a linking group having two to three linking atoms, wherein the linking atoms are each independently selected from the group consisting of C, Si, O, S, N, B or combinations thereof;

wherein the linking atoms form at least one single bond between two linking atoms;

›DETAILED DESCRIPTION · 5 of 16

wherein R 1a to R 1g are each independently selected from the group consisting of hydrogen, deuterium, alkyl, cycloalkyl, heteroalkyl, alkoxy, aryloxy, amino, silyl, alkenyl, cycloalkenyl, heteroalkenyl, alkynyl, aralkyl, CN, CF 3 , CO 2 R, C(O)R, C(O)NR 2 , NR 2 , NO 2 , OR, SR, SO 2 , SOR, SO 3 R, halo, aryl, heteroaryl, a heterocyclic group, and combinations thereof;

wherein each R is independently selected from the group consisting of hydrogen, deuterium, halo, alkyl, cycloalkyl, heteroalkyl, alkoxy, aryloxy, amino, silyl, alkenyl, cycloalkenyl, heteroalkenyl, alkynyl, aralkyl, aryl, heteroaryl, and combinations thereof;

wherein any one of the ring atoms to which R 1b to R 1g are attached may be replaced with a nitrogen atom, wherein when the ring atom is replaced with a nitrogen atom the corresponding R group is not present; and

wherein L is a substituted or unsubstituted cyclometallated ligand.

In some embodiments of the compound of Formula 1, one of the ring atoms to which R 1b to R 1g are attached is a nitrogen atom. In some embodiments, the ring atom to which R 1e is attached a nitrogen atom.

In one embodiment, the compound has a triplet excited state and wherein the linking group A stabilizes the bond between N 2 and C 1b from cleavage when the compound is in the triplet excited state.

In one embodiment, the compound has a peak emissive wavelength less than 500 nm. In another embodiment, the compound has a peak emissive wavelength less than 480 nm. In yet another embodiment, the compound has a peak emissive wavelength ranging from 400 nm to 500 nm.

In some embodiments of the compound of Formula 1, the linking group A is a saturated group.

In one embodiment of the compound of Formula 1, the linking group A is independently selected from the group consisting of —CR 1 R 2 —CR 3 R 4 —, —CR 1 R 2 —CR 3 R 4 —CR 5 R 6 —, —CR 1 R 2 —NR 3 —, —CR 1 ═CR 2 —CR 3 R 4 —, —O—SiR 1 R 2 —, —CR 1 R 2 —S—, —CR 1 R 2 —O—, and —C—SiR 1 R 2 —, wherein the substituents R 1 to R 6 can be same or different, and are independently selected from the group consisting of hydrogen, deuterium, alkyl, cycloalkyl, aryl, heteroaryl, and combinations thereof; wherein any adjacent R 1 to R 6 are optionally connected to form a saturated five membered ring or a saturated six membered ring. Any adjacent substituents refers to any two of substituents that are possible to form the ring. The two adjacent substituents can be on the same atom, or on different atoms. The linking group A can be selected from the group consisting of:

In some embodiments, the linking group A can be selected from the group consisting of

In some embodiments where the linking group A is independently selected from the group consisting of —CR 1 R 2 —CR 3 R 4 —, —CR 1 R 2 —CR 3 R 4 —CR 5 R 6 —, —CR 1 R 2 —NR 3 —, —CR 1 ═CR 2 —CR 3 R 4 —, —O—SiR 1 R 2 —, —CR 1 R 2 —S—, —CR 1 R 2 —O—, and —C—SiR 1 R 2 —, wherein the substituents R 1 to R 6 can be same or different, and are independently selected from the group consisting of hydrogen, deuterium, alkyl, cycloalkyl, aryl, heteroaryl, and combinations thereof; at least one adjacent R 1 to R 6 are connected to form a saturated five membered ring or a saturated six membered ring. In some embodiments, at least two adjacent R 1 to R 6 , if present, are connected to form a saturated five membered ring or a saturated six membered ring. In some embodiments, each R 1 to R 6 are independently selected from the group consisting of alkyl, cycloalkyl, aryl, heteroaryl, partially or fully deuterated variants thereof, and combinations thereof; wherein any adjacent R 1 to R 6 are optionally connected to form a saturated five membered ring or a saturated six membered ring.

In some embodiments where the linking group A is independently selected from the group consisting of —CR 1 R 2 —CR 3 R 4 —, —CR 1 R 2 —CR 3 R 4 —CR 5 R 6 —, —CR 1 R 2 —NR 3 —, —CR 1 ═CR 2 —CR 3 R 4 —, —O—SiR 1 R 2 —, —CR 1 R 2 —S—, —CR 1 R 2 —O—, and —C—SiR 1 R 2 —, wherein the substituents R 1 to R 6 can be same or different, and are independently selected from the group consisting of hydrogen, deuterium, alkyl, cycloalkyl, aryl, heteroaryl, and combinations thereof; each R 1 to R 6 are independently selected from the group consisting of methyl, ethyl, propyl, 1-methylethyl, butyl, 1-methylpropyl, 2-methylpropyl, pentyl, 1-methylbutyl, 2-methylbutyl, 3-methylbutyl, 1,1-dimethylpropyl, 1,2-dimethylpropyl, 2,2-dimethylpropyl, cyclopentyl, cyclohexyl, phenyl, 2,6-dimethylphenyl, 2,4,6-trimethylphenyl, 2,6-diisopropylphenyl, partially or fully deuterated variants thereof and combinations thereof. In some embodiments, each R 1 to R 6 are independently selected from the group consisting of alkyl, partially or fully deuterated variants thereof, and combinations thereof; wherein any adjacent R 1 to R 6 are optionally connected to form a saturated five membered ring or a saturated six membered ring.

In some embodiments of the compound of Formula 1, at least one of R 1a to R 1g is selected from the group consisting of alkyl, cycloalkyl, aryl, heteroaryl, partially or fully deuterated variants thereof, and combinations thereof. In other embodiments, at least one of R 1b , R 1d and R 1e is selected from the group consisting of alkyl, cycloalkyl, aryl, heteroaryl, partially or fully deuterated variants thereof, and combinations thereof. In other embodiments, R 1d is selected from the group consisting of alkyl, cycloalkyl, aryl, heteroaryl, partially or fully deuterated variants thereof, and combinations thereof. In other embodiments, R 1a is selected from the group consisting of alkyl, cycloalkyl, aryl, heteroaryl, partially or fully deuterated variants thereof, and combinations thereof.

In some embodiments, R 1a is selected from the group consisting of non-deuterated aryl, partially deuterated aryl, and fully deuterated aryl. In some embodiments, R 1a is selected from the group consisting of non-deuterated phenyl, partially deuterated phenyl, and fully deuterated phenyl. In some embodiments, R 1d is selected from the group consisting of methyl, deuterated methyl, and isopropyl. In some embodiments, R 1f is selected from the group consisting of methyl, deuterated methyl, and isopropyl.

›DETAILED DESCRIPTION · 6 of 16

In some embodiments of the compound of Formula 1, the metal M is selected from the group consisting of Re, Ru, Os, Rh, Ir, Pd, Pt, and Au. In some embodiments, the metal M is selected from the group consisting of Ir and Pt.

In some embodiments of the compound of Formula 1, the ligand L A is selected from the group consisting of:

In some embodiments of the compound of Formula 1, the ligand L is selected from the group consisting of:

wherein each X 1 to X 13 are independently selected from the group consisting of carbon and nitrogen;

wherein X is selected from the group consisting of BR′, NR′, PR′, O, S, Se, C═O, S═O, SO 2 , CR′R″, SiR′R″, and GeR′R″;

wherein R′ and R″ are optionally fused or joined to form a ring;

wherein each R a , R b , R e , and R d may represent from mono substitution to the possible maximum number of substitution, or no substitution;

wherein R′, R″, R a , R b , R e , and R d are each independently selected from the group consisting of hydrogen, deuterium, halide, alkyl, cycloalkyl, heteroalkyl, arylalkyl, alkoxy, aryloxy, amino, silyl, alkenyl, cycloalkenyl, heteroalkenyl, alkynyl, aryl, heteroaryl, acyl, carbonyl, carboxylic acids, ester, nitrile, isonitrile, sulfanyl, sulfinyl, sulfonyl, phosphino, and combinations thereof; and

wherein any two adjacent substitutents of R a , R b , R e , and R d are optionally fused or joined to form a ring or form a multidentate ligand.

In some embodiments of the compound of Formula 1, the ligand L is selected from the group consisting of:

wherein R a and R b are as defined above.

In some embodiments of the compound of Formula 1, the ligand L is selected from the group consisting of:

wherein R a and R b are as defined above.

In some embodiments of the compound of Formula 1, the ligand L is selected from the group consisting of:

wherein R a , R b , and R c are as defined above.

In some embodiments of the compound of Formula 1, ligand L is selected from the group consisting of:

In some embodiments of the compound of Formula 1, the compound is (L A ) 3 Ir, wherein L A is as defined above.

In some embodiments of the compound of Formula 1, the compound is (L A )Ir(L) 2 or (L A ) 2 Ir(L), wherein L A and L are as defined above.

In some embodiments of the compound of Formula 1, where L A is as defined above, the compound is Compound Ax having the formula Ir(L Ai ) 3 ; wherein x=i, i is an integer from 1 to 2758.

In some embodiments of the compound of Formula 1, where L A is as defined above, the compound is Compound By having the formula Ir(L Ai )(L j ) 2 or Compound Cz having the formula Ir(L Ai ) 2 (L j );

wherein y=39i+j−39, i is an integer from 1 to 2758, and j is an integer from 1 to 39;

wherein z=39i+j−39, i is an integer from 1 to 2758, and j is an integer from 1 to 39; and wherein L 1 to L 39 have the following structure:

In some embodiments of the compound of Formula 1, the compound is selected from the group consisting of:

In some embodiments of the compound of Formula 1, the compound has a structure of Formula 2:

wherein M is Pt;

wherein A 1 and A 2 are each independently a first linking group having two to three linking atoms, wherein the linking atoms are each independently selected from the group consisting of C, Si, O, S, N, B or combinations thereof;

wherein R 1b to R 1f and R 2b to R 2f are each independently selected from the group consisting of hydrogen, deuterium, alkyl, cycloalkyl, heteroalkyl, alkoxy, aryloxy, amino, silyl, alkenyl, cycloalkenyl, heteroalkenyl, alkynyl, aralkyl, CN, CF 3 , CO 2 R, C(O)R, C(O)NR 2 , NR 2 , NO 2 , OR, SR, SO 2 , SOR, SO 3 R, halo, aryl, heteroaryl, a heterocyclic group, and combinations thereof;

wherein each R is independently selected from the group consisting of hydrogen, deuterium, halo, alkyl, cycloalkyl, heteroalkyl, alkoxy, aryloxy, amino, silyl, alkenyl, cycloalkenyl, heteroalkenyl, alkynyl, aralkyl, aryl, heteroaryl, and combinations thereof;

wherein any one of the ring atoms to which R 1b to R 1f and R 2b to R 2f are attached may be replaced with a nitrogen atom, wherein when the ring atom is replaced with a nitrogen atom the corresponding R group is not present; and

wherein R ab and R ac and/or R ga and R gb may bond to form a second linking group having one to three linking atoms each independently selected from the group consisting of B, N, P, O, S, Se, C, Si, Ge or combinations thereof.

In some embodiments of the compound of Formula 2, each of the first linking groups A 1 and A 2 is independently selected from the group consisting of —CR 1 R 2 —CR 3 R 4 —, —CR 1 R 2 —CR 3 R 4 —CR 5 R 6 —, —CR 1 R 2 —NR 3 —, —CR′═CR 2 —CR 3 R 4 —, —O—SiR 1 R 2 —, —CR 1 R 2 —S—, —CR 1 R 2 —O—, and —C—SiR 1 R 2 —, wherein each RI to R 6 can be same or different, and are independently selected from the group consisting of hydrogen, deuterium, alkyl, cycloalkyl, aryl, heteroaryl, and combinations thereof; and wherein any adjacent R 1 to R 6 are optionally connected to form a saturated five membered ring or a saturated six membered ring.

In some embodiments of the compound of Formula 2, the compound has a triplet excited state and wherein the linking group stabilizes the bond between N 2 and C 1b from cleavage when the compound is in the triplet excited state.

In some embodiments of the compound of Formula 2, the compound has a peak emissive wavelength less than 500 nm. In some embodiments, the compound has a peak emissive wavelength less than 480 nm. In some embodiments, the compound has a peak emissive wavelength ranging from 400 nm to 500 nm.

In some embodiments of the compound of Formula 2, each of the first linking groups A 1 and A 2 is independently selected from the Linker Group consisting of:

In some embodiments of the compound of Formula 2, the second linking group is independently selected from the group consisting of: BR′, NR′, PR′, O, S, Se, C═O, S═O, SO 2 , CR 1 R 2 , —CR 1 R 2 —CR 3 R 4 —, —CR 1 R 2 —CR 3 R 4 —CR 5 R 6 —, —CR 1 R 2 —NR 3 —, —CR′═CR 2 —CR 3 R 4 —, —O—SiR 1 R 2 —, —CR 1 R 2 —S—, —CR 1 R 2 —O—, —C—SiR 1 R 2 —, SiR 1 R 2 , and GeR 1 R 2 , wherein each R 1 to R 6 can be same or different, and are independently selected from the group consisting of hydrogen, deuterium, alkyl, cycloalkyl, alkenyl, alkenyl, alkynyl, heteroalkyl, aralkyl, aryl, heteroaryl, and combinations thereof; and wherein any adjacent R 1 to R 6 are optionally connected to form a saturated five membered ring or a saturated six membered ring.

›DETAILED DESCRIPTION · 7 of 16

In some embodiments of the compound of Formula 2, the compound is selected from the group consisting of:

In some embodiments of the compound of Formula 1, the compound has Formula 3:

wherein M is Pt;

wherein L 2 and L 3 are each independently selected from the group consisting of a single bond, BR, NR, PR, O, S, Se, C—O, S—O, SO 2 , CR 1 R 2 , SiR 1 R 2 , and GeR 1 R 2 ;

wherein R 3a to R 3f , are each independently selected from the group consisting of hydrogen, deuterium, alkyl, cycloalkyl, heteroalkyl, alkoxy, aryloxy, amino, silyl, alkenyl, cycloalkenyl, heteroalkenyl, alkynyl, aralkyl, CN, CF 3 , CO 2 R, C(O)R, C(O)NR 2 , NR 2 , NO 2 , OR, SR, SO 2 , SOR, SO 3 R, halo, aryl, heteroaryl, a heterocyclic group, and combinations thereof,

wherein each R is independently selected from the group consisting of hydrogen, deuterium, halo, alkyl, cycloalkyl, heteroalkyl, alkoxy, aryloxy, amino, silyl, alkenyl, cycloalkenyl, heteroalkenyl, alkynyl, aralkyl, aryl, heteroaryl, and combinations thereof;

wherein any two adjacent R 1f , R 3a , R 3c , R 3d , R 1 and R 2 are optionally joined to form a ring; wherein L 2 and R 1f , L 2 and R 3a , or L 2 and both R 1f and R 3a are optionally joined to form one or more rings; and

wherein L 3 and R 3c , L 3 and R 3d , or L 3 and both R 3c and R 3d are optionally joined to form one or more rings.

In some embodiments of the compound of Formula 3, L 2 and L 3 are each independently selected from the group consisting of BR′, NR′, PR′, O, S, Se, C═O, S═O, SO 2 , CR 1 R 2 , SiR 1 R 2 , and GeR 1 R 2 . In some embodiments of the compound of Formula 3, R 1 or R 3a and R 1 or R 2 are joined to form a ring. In some embodiments of the compound of Formula 3, R 3c or R 3d and R 1 or R 2 are joined to form a ring.

In some embodiments of the compound of Formula 3, the compound is selected from the group consisting of:

According to another aspect of the present disclosure, an organic light emitting device (OLED) is disclosed. The OLED comprises an anode; a cathode; and an organic layer disposed between the anode and the cathode, wherein the organic layer comprising a compound having a structure (L A ) n ML m according to Formula 1:

wherein M is a metal having an atomic weight greater than 40, n has a value of at least 1 and m+n is the maximum number of ligands that may be attached to the metal;

wherein A is a linking group having two to three linking atoms, wherein the linking atoms are each independently selected from the group consisting of C, Si, O, S, N, B or combinations thereof;

wherein the linking atoms form at least one single bond between two linking atoms; wherein R 1a to R 1g are each independently selected from the group consisting of hydrogen, deuterium, alkyl, cycloalkyl, heteroalkyl, alkoxy, aryloxy, amino, silyl, alkenyl, cycloalkenyl, heteroalkenyl, alkynyl, aralkyl, CN, CF 3 , CO 2 R, C(O)R, C(O)NR 2 , NR 2 , NO 2 , OR, SR, SO 2 , SOR, SO 3 R, halo, aryl, heteroaryl, a heterocyclic group, and combinations thereof;

wherein each R is independently selected from the group consisting of hydrogen, deuterium, halo, alkyl, cycloalkyl, heteroalkyl, alkoxy, aryloxy, amino, silyl, alkenyl, cycloalkenyl, heteroalkenyl, alkynyl, aralkyl, aryl, heteroaryl, and combinations thereof;

wherein any one of the ring atoms to which R 1b to R 1g are attached may be replaced with a nitrogen atom, wherein when the ring atom is replaced with a nitrogen atom the corresponding R group is not present; and

wherein L is a substituted or unsubstituted cyclometallated ligand.

In some embodiments of the OLED, the OLED is incorporated into a device selected from the group consisting of a consumer product, an electronic component module, and a lighting panel.

In some embodiments of the OLED, the organic layer is an emissive layer and the compound is an emissive dopant or a non-emissive dopant.

In some embodiments of the OLED, the organic layer further comprises a host, wherein the host comprises a triphenylene containing benzo-fused thiophene or benzo-fused furan;

wherein any substituent in the host is an unfused substituent independently selected from the group consisting of C n H 2n+1 , OC n H 2n+1 , OAr 1 , N(C n H 2n+1 ) 2 , N(Ar 1 )(Ar 2 ), CH═CH—C n H 2n+1 , C≡CC n H 2n+1 , Ar 1 , Ar 1 —Ar 2 , C n H 2n —Ar 1 , or no substitution;

wherein n is from 1 to 10; and

wherein Ar 1 and Ar 2 are independently selected from the group consisting of benzene, biphenyl, naphthalene, triphenylene, carbazole, and heteroaromatic analogs thereof.

In some embodiments of the OLED, the organic layer further comprises a host, wherein host comprises at least one chemical group selected from the group consisting of triphenylene, carbazole, dibenzothiphene, dibenzofuran, dibenzoselenophene, azatriphenylene, azacarbazole, aza-dibenzothiophene, aza-dibenzofuran, and aza-dibenzoselenophene.

In some embodiments of the OLED, the organic layer further comprises a host, wherein the host is selected from the group consisting of:

and combinations thereof.

In some embodiments of the OLED, the organic layer further comprises a host, wherein the host comprises a metal complex.

According to another aspect of the present disclosure, a formulation comprising a compound of Formula 1 is also disclosed. The formulation can include one or more components selected from the group consisting of a solvent, a host, a hole injection material, hole transport material, and an electron transport layer material, disclosed herein.

According to another aspect of the present disclosure, a compound having Formula (Ia) shown below is disclosed.

In Formula (1a), A is a linking group having two to three linking atoms, wherein the linking atoms are each independently selected from the group consisting of C, Si, O, S, N, B or combinations thereof;

wherein R ab , R ga , R 1b to R 1f are each independently selected from the group consisting of hydrogen, deuterium, alkyl, cycloalkyl, heteroalkyl, alkoxy, aryloxy, amino, silyl, alkenyl, cycloalkenyl, heteroalkenyl, alkynyl, aralkyl, CN, CF 3 , CO 2 R, C(O)R, C(O)NR 2 , NR 2 , NO 2 , OR, SR, SO 2 , SOR, SO 3 R, halo, aryl, heteroaryl, a heterocyclic group, and combinations thereof;

›DETAILED DESCRIPTION · 8 of 16

wherein each R is independently selected from the group consisting of hydrogen, deuterium, halo, alkyl, cycloalkyl, heteroalkyl, alkoxy, aryloxy, amino, silyl, alkenyl, cycloalkenyl, heteroalkenyl, alkynyl, aralkyl, aryl, heteroaryl, and combinations thereof; and

wherein any one of the ring atoms to which R ab , R ga , R 1b to R 1f are attached may be replaced with a nitrogen atom, wherein when the ring atom is replaced with a nitrogen atom the corresponding R group is not present.

In some embodiments of the compound of Formula 1a, the linking group A is independently selected from the group consisting of —CR 1 R 2 —CR 3 R 4 —, —CR 1 R 2 —CR 3 R 4 —CR 5 R 6 —, —CR 1 R 2 —NR 3 —, —CR′═CR 2 —CR 3 R 4 —, —O—SiR 1 R 2 —, —CR 1 R 2 —S—, —CR 1 R 2 —O—, and —C—SiR 1 R 2 —, wherein each R 1 to R 6 can be same or different, and are independently selected from the group consisting of hydrogen, deuterium, alkyl, cycloalkyl, aryl, heteroaryl, and combinations thereof; wherein any adjacent R 1 to R 6 are optionally connected to form a saturated five membered ring or a saturated six membered ring.

In some embodiments of the compound of Formula (1a), the compound has a triplet excited state and wherein the linking group stabilizes the bond between N 2 and C 1b from cleavage when the compound is in the triplet excited state.

In some embodiments of the compound of Formula (1a), the linking group A is selected from the Linker Group defined above.

In some embodiments of the compound of Formula (1a), the compound is selected from the group consisting of.

In some embodiments of the compound having Formula (1a), the compound has the structure of Formula (2a) and Formula (2b) tethered together as defined below:

wherein A 1 and A 2 are each a first linking group having two to three linking atoms, wherein the linking atoms are each independently selected from the group consisting of C, Si, O, S, N, B and combinations thereof, and

wherein R ac , R gb , and R 2b to R 2f are each independently selected from the group consisting of hydrogen, deuterium, alkyl, cycloalkyl, heteroalkyl, alkoxy, aryloxy, amino, silyl, alkenyl, cycloalkenyl, heteroalkenyl, alkynyl, aralkyl, CN, CF 3 , CO 2 R, C(O)R, C(O)NR 2 , NR 2 , NO 2 , OR, SR, SO 2 , SOR, SO 3 R, halo, aryl, heteroaryl, a heterocyclic group, and combinations thereof;

wherein the compound is tethered together via at least one second linking group formed between R ab and R a c and/or R ga and R gb , wherein at least one second linking group has one to three linking atoms and each linking atom is independently selected from the group consisting of B, N, P, O, S, Se, C, Si, Ge and combinations thereof; and any one of the ring atoms to which R 1b to R 1f and R 2b to R 2f are attached may be replaced with a nitrogen atom, wherein when the ring atom is replaced with a nitrogen atom the corresponding R group is not present.

In some embodiments of the compound having the structure of Formula (2a) and Formula (2b) tethered together as defined above, the at least one second linking group is formed between R ab and R ac .

In some embodiments of the compound having the structure of Formula (2a) and Formula (2b) tethered together as defined above, the at least one second linking group is formed between R ga and R gb .

In some embodiments of the compound having the structure of Formula (2a) and Formula (2b) tethered together as defined above, the at least one second linking group are formed between R ga and R gb and R ab and R ac .

In some embodiments of the compound having the structure of Formula (2a) and Formula (2b) tethered together as defined above, each of the first linking groups A 1 and A 2 is independently selected from the group consisting of —CR 1 R 2 —CR 3 R 4 —, —CR 1 R 2 —CR 3 R 4 —CR 5 R 6 —, —CR 1 R 2 —NR 3 —, —CR′═CR 2 —CR 3 R 4 —, —O—SiR 1 R 2 —, —CR 1 R 2 —S—, —CR 1 R 2 —O—, and —C—SiR 1 R 2 —, wherein each R 1 to R 6 can be same or different, and are independently selected from the group consisting of hydrogen, deuterium, alkyl, cycloalkyl, aryl, heteroaryl, and combinations thereof;

wherein any adjacent R 1 to R 6 are optionally connected to form a saturated five membered ring or a saturated six membered ring.

In some embodiments of the compound having the structure of Formula (2a) and Formula (2b) tethered together as defined above, each of the first linking groups A 1 and A 2 is independently selected from the Linker Group defined above.

In some embodiments of the compound having the structure of Formula (2a) and Formula (2b) tethered together as defined above, the second linking group is independently selected from the group consisting of BR 1 , NR 1 , PR 1 , O, S, Se, C═O, S═O, SO 2 , CR 1 R 2 , —CR 1 R 2 —CR 3 R 4 —, —CR 1 R 2 —CR 3 R 4 —CR 5 R 6 —, —CR 1 R 2 —NR 3 —, —CR′═CR 2 —CR 3 R 4 —, —O—SiR 1 R 2 —, —CR 1 R 2 —S—, —CR 1 R 2 —, —C—SiR 1 R 2 —, SiR 1 R 2 , and GeR 1 R 2 , wherein each R 1 to R 6 can be same or different, and are independently selected from the group consisting of hydrogen, deuterium, alkyl, cycloalkyl, aryl, heteroaryl, and combinations thereof; wherein any adjacent R 1 to R 6 are optionally connected to form a saturated five membered ring or a saturated six membered ring.

In some embodiments of the compound having the structure of Formula (2a) and Formula (2b) tethered together as defined above, the compound is selected from the group consisting of:

In some embodiments of the compound having the structure of Formula (2a) and Formula (2b) tethered together as defined above, the compound has Formula (3a):

wherein L 2 and L 3 are each independently selected from the group consisting of a single bond, BR 1 , NR 1 , PR 1 , O, S, Se, C═O, S═O, SO 2 , CR 1 R 2 , SiR 1 R 2 , and GeR 1 R 2 ;

wherein R 3a -R 3f , are each independently selected from the group consisting of hydrogen, deuterium, alkyl, cycloalkyl, heteroalkyl, alkoxy, aryloxy, amino, silyl, alkenyl, cycloalkenyl, heteroalkenyl, alkynyl, aralkyl, CN, CF 3 , CO 2 R, C(O)R, C(O)NR 2 , NR 2 , NO 2 , OR, SR, SO 2 , SOR, SO 3 R, halo, aryl, heteroaryl, a heterocyclic group, and combinations thereof;

›DETAILED DESCRIPTION · 9 of 16

wherein each R 1 and R 2 is independently selected from the group consisting of hydrogen, deuterium, halo, alkyl, cycloalkyl, heteroalkyl, alkoxy, aryloxy, amino, silyl, alkenyl, cycloalkenyl, heteroalkenyl, alkynyl, aralkyl, aryl, heteroaryl, and combinations thereof;

wherein any two adjacent R 1f , R 3a , R 3c , R 3d , R′, and R 2 are optionally joined to form a ring; wherein L 2 and R 1f , L 2 and R 3a , or L 2 and both R 1f and R 3a are optionally joined to form one or more rings; and

wherein L 3 and R 3c , L 3 and R 3d , or L 3 and both R 3c and R 3d are optionally joined to form one or more rings.

In some embodiments of the compound having Formula (3a), L 2 and L 3 are independently selected from the group consisting of BR 1 , NR 1 , PR 1 , O, S, Se, C═O, S═O, SO 2 , CR 1 R 2 , SiR 1 R 2 , and GeR 1 R 2 .

In some embodiments of the compound having Formula (3a), R 1 or R 3a and R 1 or R 2 are joined to form a ring.

In some embodiments of the compound having Formula (3a), R 3c or R 3d and R 1 or R 2 are joined to form a ring.

In some embodiments of the compound having Formula (3a), the compound is selected from the group consisting of:

The metal complexes according to various embodiments of the present invention can exhibit a number of desirable characteristics. In some embodiments, the metal complexes having the structures of Formula 1, Formula 2, or Formula 3 can exhibit photoluminescence with a high quantum efficiency, with a narrow spectral width, and/or with a peak emission wavelength located within a desirable range of wavelengths, such as the visible range or the near infrared range. Also, these photoluminescent characteristics can be relatively invariant over a wide range of excitation wavelengths. In some embodiments, the metal complexes of Formula 1, Formula 2, or Formula 3 can have other desirable characteristics, such as relating to their band gap energies and electrical conductivities. Also, advantageously, the metal complexes of Formula 1, Formula 2, or Formula 3 can be inexpensively and readily synthesized from commercially available starting materials. In some embodiments, the metal complexes of Formula 1, Formula 2, or Formula 3 can exhibit photoluminescence with a relatively low quantum efficiency but this may still be sufficient for certain applications.

In some embodiments, a metal complex having the structure of Formula 1, Formula 2, or Formula 3 has a peak emissive wavelength less than 500 nm. In some embodiments, a metal complexes having the structure of Formula 1, Formula 2, or Formula 3 has a peak emissive wavelength less than 480 nm. In some embodiments, a metal complex having the structure of Formula 1, Formula 2, or Formula 3 has a peak emissive wavelength of 400 nm to 500 nm inclusive.

In some embodiments, metal complexes having the structure of Formula 1, Formula 2, or Formula 3 have a triplet excited state and the linking group A that stabilizes the bond between N 2 and C 1b , shown below, from cleavage when the compound is in the triplet excited state.

Accordingly, in some embodiments, the metal complex having the structure of Formula 1, Formula 2, or Formula 3 is a phosphorescent light emitting substance. In some embodiments, the metal complex having the structure of Formula 1, Formula 2, or Formula 3 is a fluorescent light emitting substance. In some embodiments, the metal complex having the structure of Formula 1, Formula 2, or Formula 3 is both a fluorescent and a phosphorescent light emitting substance.

Metal complexes having the structure of Formula 1, Formula 2, or Formula 3 are suitable, for example, for use in OLEDs, which exploit the propensity of materials to emit light when they are excited by an electrical current. Accordingly, in some aspects, the present invention provides an organic light-emitting material comprising at least one metal complex having the structure of Formula 1, Formula 2, or Formula 3. In some embodiments, the present invention provides an organic light-emitting material comprising at least two metal complexes selected from compounds having the structure of Formula 1, Formula 2, or Formula 3.

Organic light-emitting materials according to various embodiments of the invention can exhibit a number of desirable characteristics. In some embodiments, the organic light-emitting materials can exhibit photoluminescence with a high quantum efficiency, with a narrow spectral width, and with a peak emission wavelength located within a desirable range of wavelengths, such as the visible range or the near infrared range. Also, these photoluminescent characteristics can be relatively invariant over a wide range of excitation wavelengths. The organic light-emitting materials can have other desirable characteristics, such as relating to their band gap energies and electrical conductivities. Advantageously, the organic light-emitting materials can be inexpensively and readily formed for use in various applications, including consumer products and lighting panels.

In some embodiments, the content of a photoluminescent substance in a light emitting material according to the present invention (e.g., one or more metal complexes having the structure of Formula 1, Formula 2, or Formula 3) is between 0.1% by mass to 50% by mass inclusive with respect to the total mass of a light emitting layer comprising the light emitting material. In some embodiments, the content of a photoluminescent substance in a light emitting material according to the present invention is between 0.3% by mass to 40% by mass inclusive with respect to the total mass of a light emitting layer comprising the light emitting material. In some embodiments, the content of a photoluminescent substance in a light emitting material according to the present invention is between 0.5% by mass to 30% by mass inclusive with respect to the total mass of a light emitting layer comprising the light emitting material. In some embodiments, the photoluminescent substance in a light emitting material according to the present invention is appended to a polymer chain or incorporated in a denrimer material.

›DETAILED DESCRIPTION · 10 of 16

IV. Devices

In some aspects, the present invention provides an organic electroluminescence device which comprises at least one metal complex having the structure of Formula 1, Formula 2, or Formula 3. In some embodiments, an organic electroluminescence device according to the present invention comprises a first organic light emitting device, which further comprises an anode; a cathode; an organic layer disposed between the anode and the cathode, and comprising at least one metal complex having the structure of Formula 1, Formula 2, or Formula 3. In some preferred embodiments of the organic electroluminescence device, the organic layer further comprises a host material. In some preferred embodiments of the organic electroluminescence device, the host material comprises an organic compound. In some preferred embodiments of the organic electroluminescence device, the host material comprises an organic compound having a molecule containing at least one group selected from the group consisting of carbazole, dibenzothiphene, dibenzofuran, azacarbazole, aza-dibenzothiophene, and aza-dibenzofuran.

Generally, an organic layer suitable for use in the organic electroluminescence device of the present may have any suitable configuration of layer depending, for example, on application and purpose of the organic electroluminescence device. Accordingly, in some embodiments of the organic electroluminescence device, the organic layer is formed on a transparent electrode or a semitransparent electrode. In some such embodiments, the organic layer is formed on a top surface or any suitable surface of the transparent electrode or the semitransparent electrode. Also, suitable shape, size and/or thickness of the organic layer may be employed depending, for example, on application and the purpose of the organic electroluminescence device. Specific examples of configurations of an organic electroluminescence device of the present invention, having a substrate, a cathode, an anode and an organic layer include, but are not limited to, the following: (A) Anode/hole transporting layer/light emitting layer/electron transporting layer/cathode;

(B) Anode/hole transporting layer/light emitting layer/block layer/electron transporting layer/cathode; (C) Anode/hole transporting layer/light emitting layer/block layer/electron transporting layer/electron injection layer/cathode; (D) Anode/hole injection layer/hole transporting layer/light emitting layer/block layer/electron transporting layer/cathode; and (E) Anode/hole injection layer/hole transporting layer/light emitting layer/block layer/electron transporting layer/electron injection layer/cathode. (F) Anode/hole injection layer/electron blocking layer/hole transporting layer/light emitting layer/block layer/electron transporting layer/electron injection layer/cathode.

Additional device configuration, including substrate, cathode and anode of an organic electroluminescence device, is described in Japanese Patent Publication No. 2008-270736.

<Substrate>

A suitable substrate usable in an organic electroluminescence device of the present invention is preferably a substrate which does not scatter or decrease light emitted from an organic layer when used for display applications. When used for lighting or certain display applications, substrates that scatter light are acceptable. In some embodiments, the substrate preferably is composed of an organic material which exhibits superior heat resistance, dimensional stability, solvent resistance, electrical insulating property and/or processability.

The substrate suitable for use in the present invention is preferably one which does not scatter or attenuate light emitted from the organic compound layer. Specific examples of materials for the substrate, include but are not limited to, inorganic materials such as zirconia-stabilized yttrium (YSZ) and glass; polyesters such as polyethylene terephthalate, polybutylene phthalate, and polyethylene naphthalate; and organic materials such as polystyrene, polycarbonate, polyethersulfone, polyarylate, polyimide, polycycloolefin, norbornene resin, polychlorotrifluoroethylene, and the like.

In some embodiments, when glass is used as the substrate, alkali free glass is preferably used. Specific examples of suitable alkali free glass are found in US patent application publication no. 2013/0237401 by Takahiro Kawaguchi, which published Sep. 12, 2013. In some embodiments, when soda-lime glass is used as the substrate, it is preferred to use glass on which a barrier coat of silica or the like has been applied. In some embodiments, when an organic material is used as the substrate, it is preferred to use a material having one or more of the attributes: excellent in heat resistance, dimensional stability, solvent resistance, electric insulation performance, and workability.

Generally, there is no particular limitation as to the shape, the structure, the size or the like of the substrate, but any of these attributes may be suitably selected according to the application, purposes and the like of the light-emitting element. n general, a plate-like substrate is preferred as the shape of the substrate. A structure of the substrate may be a monolayer structure or a laminate structure. Furthermore, the substrate may be formed from a single member or two or more members.

Although the substrate may be transparent and colorless, or transparent and colored, it is preferred that the substrate is transparent and colorless from the viewpoint that the substrate does not scatter or attenuate light emitted from the organic light-emitting layer. In some embodiments, a moisture permeation preventive layer (gas barrier layer) may be provided on the top surface or the bottom surface of the substrate. Examples of a material of the moisture permeation preventive layer (gas barrier layer), include, but are not limited to, inorganic substances such as silicon nitride and silicon oxide. The moisture permeation preventive layer (gas barrier layer) may be formed in accordance with, for example, a high-frequency sputtering method or the like.

›DETAILED DESCRIPTION · 11 of 16

In the case of applying a thermoplastic substrate, a hard-coat layer or an under-coat layer may be further provided as needed.

<Anode>

Any anode may be used in an organic electroluminescence device of the present invention so long as it serves as an electrode supplying holes into an organic layer. In some embodiments of the organic electroluminescence device of the present invention, any suitable shape, structure and/or size of known electrode material may be used depending, for example, on the application and purpose of the organic electroluminescence device. In some embodiments, a transparent anode is preferred.

The anode may generally be any material as long as it has a function as an electrode for supplying holes to the organic compound layer, and there is no particular limitation as to the shape, the structure, the size or the like. However, it may be suitably selected from among well-known electrode materials according to the application and purpose of the light-emitting element. In some embodiments, the anode is provided as a transparent anode.

Materials for the anode preferably include, for example, metals, alloys, metal oxides, electric conductive compounds, and mixtures thereof. Materials having a work function of 4.0 eV or more are preferable. Specific examples of the anode materials include electric conductive metal oxides such as tin oxides doped with antimony, fluorine or the like (ATO and FTO), tin oxide, zinc oxide, indium oxide, indium tin oxide (ITO), and indium zinc oxide (IZO); metals such as gold, silver, chromium, aluminum, copper, and nickel; mixtures or laminates of these metals and the electric conductive metal oxides; inorganic electric conductive materials such as copper iodide and copper sulfide; organic electric conductive materials such as polyaniline, polythiophene, and polypyrrole; and laminates of these inorganic or organic electron-conductive materials with ITO. Among these, the electric conductive metal oxides are preferred, and particularly, ITO is preferable in view of productivity, high electric conductivity, transparency and the like.

The anode may be formed on the substrate in accordance with a method which is appropriately selected from among wet methods such as printing methods, coating methods and the like; physical methods such as vacuum deposition methods, sputtering methods, ion plating methods and the like; and chemical methods such as CVD (chemical vapor deposition) and plasma CVD methods and the like, in consideration of the suitability to a material constituting the anode. For instance, when ITO is selected as a material for the anode, the anode may be formed in accordance with a DC or high-frequency sputtering method, a vacuum deposition method, an ion plating method or the like.

In the organic electroluminescence element of the present invention, a position at which the anode is to be formed is not particularly limited, but it may be suitably selected according to the application and purpose of the light-emitting element. The anode may be formed on either the whole surface or a part of the surface on either side of the substrate.

For patterning to form the anode, a chemical etching method such as photolithography, a physical etching method such as etching by laser, a method of vacuum deposition or sputtering through superposing masks, or a lift-off method or a printing method may be applied.

A thickness of the anode may be suitably selected according to the material constituting the anode and is therefore not definitely decided, but it is usually in a range of from 10 nm to 50 μm, and preferably from 50 nm to 20 μm. The thickness of the anode layer may be properly controlled depending on the material used therefor. The resistance of the anode is preferably 10 3 Ω/square or less, and more preferably 10 2 Ω/square or less, more preferably 30 Ω/square or less. In the case where the anode is transparent, it may be either transparent and colorless, or transparent and colored. For extracting luminescence from the transparent anode side, it is preferred that a light transmittance of the anode is 60% or higher, and more preferably 70% or higher. A detailed description of transparent anodes can be found in “TOUMEI DENNKYOKU-MAKU NO SHINTENKAI (Novel Developments in Transparent Electrode Films)” edited by Yutaka Sawada, published by C.M.C. in 1999.

In the case where a plastic substrate having a low heat resistance is used in the present invention, it is preferred that ITO or IZO is used to obtain a transparent anode prepared by forming the film at a low temperature of 150° C. or lower.

<Cathode>

Any cathode may be used in an organic electroluminescence device of the present invention so long as it serves as an electrode supplying electrons into the organic layer. In some embodiments of the organic electroluminescence device of the present invention, any suitable shape, structure and/or size of known electrode material may be used depending, for example, on the application and purpose of the organic electroluminescence device. In some embodiments, a transparent cathode is preferred.

The cathode may generally be any material as long as it has a function as an electrode for injecting electrons to the organic compound layer, and there is no particular limitation as to the shape, the structure, the size or the like. However it may be suitably selected from among well-known electrode materials according to the application and purpose of the light-emitting element.

Materials constituting the cathode include, for example, metals, alloys, metal oxides, electric conductive compounds, and mixtures thereof. Materials having a work function of 4.0 eV or more are preferable. Specific examples thereof include alkali metals (e.g., Li, Na, K, Cs or the like), alkaline earth metals (e.g., Mg, Ca or the like), gold, silver, lead, aluminum, sodium-potassium alloys, lithium-aluminum alloys, magnesium-silver alloys, rare earth metals such as indium, and ytterbium, and the like. They may be used alone, but it is preferred that two or more of them are used in combination from the viewpoint of satisfying both stability and electron injectability.

›DETAILED DESCRIPTION · 12 of 16

In some embodiments, as the materials for constituting the cathode, alkaline metals or alkaline earth metals are preferred in view of electron injectability, and materials containing aluminum as a major component are preferred in view of excellent preservation stability.

The term “material containing aluminum as a major component” refers to a material constituted by aluminum alone; alloys comprising aluminum and 0.01% by weight to 10% by weight of an alkaline metal or an alkaline earth metal; or mixtures thereof (e.g., lithium-aluminum alloys, magnesium-aluminum alloys and the like). Exemplary materials for the cathode are described in detail in JP-A Nos. 2-15595 and 5-121172.

A method for forming the cathode is not particularly limited, but it may be formed in accordance with a well-known method. For instance, the cathode may be formed in accordance with a method which is appropriately selected from among wet methods such as printing methods, coating methods and the like; physical methods such as vacuum deposition methods, sputtering methods, ion plating methods and the like; and chemical methods such as CVD and plasma CVD methods and the like, in consideration of the suitability to a material constituting the cathode. For example, when a metal (or metals) is (are) selected as a material (or materials) for the cathode, one or two or more of them may be applied at the same time or sequentially in accordance with a sputtering method or the like.

For patterning to form the cathode, a chemical etching method such as photolithography, a physical etching method such as etching by laser, a method of vacuum deposition or sputtering through superposing masks, or a lift-off method or a printing method may be applied.

In the present invention, a position at which the cathode is to be formed is not particularly limited, and it may be formed on either the whole or a part of the organic compound layer.

Furthermore, a dielectric material layer made of fluorides, oxides or the like of an alkaline metal or an alkaline earth metal may be inserted between the cathode and the organic compound layer with a thickness of from 0.1 nm to 5 nm. The dielectric material layer may be considered to be a kind of electron injection layer. The dielectric material layer may be formed in accordance with, for example, a vacuum deposition method, a sputtering method, an ionplating method or the like.

A thickness of the cathode may be suitably selected according to materials for constituting the cathode and is therefore not definitely decided, but it is usually in a range of from 10 nm to 5 μm, and preferably from 50 nm to 1 μm.

Moreover, the cathode may be transparent or opaque. A transparent cathode may be formed by preparing a material for the cathode with a small thickness of from 1 nm to 10 nm, and further laminating a transparent electric conductive material such as ITO or IZO thereon.

<Protective Layer>

A whole body of the organic EL element of the present invention may be protected by a protective layer. Any materials may be applied in the protective layer as long as the materials have a function to protect a penetration of ingredients such as moisture, oxygen or the like which accelerates deterioration of the element into the element. Specific examples of materials for the protective layer include metals such as In, Sn, Pb, Au, Cu, Ag, Al, Ti, Ni and the like; metal oxides such as MgO, SiO, SiO 2 , Al 2 O 3 , GeO, NiO, CaO, BaO, Fe 2 O 3 , Y 2 O 3 , TiO 2 and the like; metal nitrides such as SiN x , SiN x O y and the like; metal fluorides such as MgF 2 , LiF, AlF 3 , CaF 2 and the like; polyethylene; polypropylene; polymethyl methacrylate; polyimide; polyurea; polytetrafluoroethylene; polychlorotrifluoroethylene; polydichlorodifluoroethylene; a copolymer of chlorotrifluoroethylene and dichlorodifluoroethylene; copolymers obtained by copolymerizing a monomer mixture containing tetrafluoroethylene and at least one comonomer; fluorine-containing copolymers each having a cyclic structure in the copolymerization main chain; water-absorbing materials each having a coefficient of water absorption of 1% or more; moisture permeation preventive substances each having a coefficient of water absorption of 0.1% or less; and the like.

There is no particular limitation as to a method for forming the protective layer. For instance, a vacuum deposition method, a sputtering method, a reactive sputtering method, an MBE (molecular beam epitaxial) method, a cluster ion beam method, an ion plating method, a plasma polymerization method (high-frequency excitation ion plating method), a plasma CVD method, a laser CVD method, a thermal CVD method, a gas source CVD method, a coating method, a printing method, or a transfer method may be applied.

<Sealing>

The whole organic electroluminescence element of the present invention may be sealed with a sealing cap. Furthermore, a moisture absorbent or an inert liquid may be used to seal a space defined between the sealing cap and the light-emitting element. Although the moisture absorbent is not particularly limited, specific examples thereof include barium oxide, sodium oxide, potassium oxide, calcium oxide, sodium sulfate, calcium sulfate, magnesium sulfate, phosphorus pentaoxide, calcium chloride, magnesium chloride, copper chloride, cesium fluoride, niobium fluoride, calcium bromide, vanadium bromide, molecular sieve, zeolite, magnesium oxide and the like. Although the inert liquid is not particularly limited, specific examples thereof include paraffins; liquid paraffins; fluorine-based solvents such as perfluoroalkanes, perfluoroamines, perfluoroethers and the like; chlorine-based solvents; silicone oils; and the like.

<Driving>

In the organic electroluminescence element of the present invention, when a DC (AC components may be contained as needed) voltage (usually 2 volts to 15 volts) or DC is applied across the anode and the cathode, luminescence can be obtained. For the driving method of the organic electroluminescence element of the present invention, driving methods described in JP-A Nos. 2-148687, 6-301355, 5-29080, 7-134558, 8-234685, and 8-241047; Japanese Patent No. 2784615, U.S. Pat. Nos. 5,828,429 and 6,023,308 are applicable.

›DETAILED DESCRIPTION · 13 of 16

<Applications>

Devices fabricated in accordance with embodiments of the inventions described herein may be incorporated into a wide variety of consumer products, including but not limited to flat panel displays, computer monitors, televisions, billboards, lights for interior or exterior illumination and/or signaling, heads up displays, fully transparent displays, flexible displays, laser printers, telephones, cell phones, personal digital assistants (PDAs), laptop computers, digital cameras, camcorders, viewfinders, micro-displays, vehicles, a large area wall, theater or stadium screen, or a sign.

<Organic Layer>

An organic layer suitable for use in an organic electroluminescence device of the present invention may comprise a plurality of layers, including, for example, light emitting layer, host material, electric charge transporting layer, hole injection layer, and hole transporting layer. Blocking layers may also be included e.g. hole (and or exciton) blocking layers (HBL) or electron (and or exciton) blocking layers (EBL). In some embodiments of an organic electroluminescence device of the present invention, each organic layer may be formed by a dry-type film formation method such as a deposition method or a sputtering method, or a solution coating process such as a transfer method, a printing method, a spin coating method, or a bar coating method. In some embodiments of an organic electroluminescence device of the present invention, at least one layer of the organic layer is preferably formed by a solution coating process.

A. Light Emitting Layer

Light Emitting Material:

A light emitting material in accordance with the present invention preferably includes at least one metal complex having the structure of Formula 1, Formula 2, or Formula 3. Some embodiments of an organic electroluminescence device of the present invention comprises the light emitting material in an amount of about 0.1% by mass to about 50% by mass with respect to the total mass of the compound constituting the light emitting layer. In some embodiments, an organic electroluminescence device of the present invention comprises the light emitting material in an amount of about 1% by mass to about 50% by mass with respect to the total mass of the compound constituting the light emitting layer. In some embodiments, an organic electroluminescence device of the present invention comprises the light emitting material in an amount of about 2% by mass to about 40% by mass with respect to the total mass of the compound constituting the light emitting layer. In some embodiments, a total amount of the light-emitting materials in the light-emitting layer is preferably from about 0.1% by weight to about 30% by weight with respect to the entire amount of compounds contained in the light-emitting layer. In some embodiments, a total amount of the light-emitting materials in the light-emitting layer is preferably from about 1% by weight to about 20% by weight in view of durability and external quantum efficiency. In some embodiments, a total amount of the host materials in the light-emitting layer is preferably from about 70% by weight to about 99.9% by weight. In some embodiments, a total amount of the host materials in the light-emitting layer is preferably from about 80% by weight to 99% by weight in view of durability and external quantum efficiency. In some embodiments, graded light emitting layers or graded interfaces within the light emitting layer may be used. Grading may be formed, for example, by mixing two or more distinct materials in a fashion that an abrupt change from one layer to another is not formed. Graded light emitting layers and or interfaces have been shown to improve device lifetime and this device architecture may be beneficial to improving PHOLED lifetime and general performance. In this instance the the light emitting material may be present in an amount of about 0% by mass to about 100% by mass at any given position within the light emitting layer.

In some embodiments, a light-emitting layer in the present invention may include the light-emitting materials and a host material contained in the light-emitting layer as a combination of a fluorescent light-emitting material which emits light (fluorescence) through a singlet exciton and a host material, or a combination of a phosphorescent light-emitting material which emits light (phosphorescence) through a triplet exciton and a host material. In some embodiments, a light-emitting layer in the present invention may include the light-emitting materials and a host material contained in the light-emitting layer as a combination of a phosphorescent light-emitting material and a host material.

In some embodiments, the first compound can be an emissive dopant. In some embodiments, the compound can produce emissions via phosphorescence, fluorescence, thermally activated delayed fluorescence, i.e., TADF (also referred to as E-type delayed fluorescence), triplet-triplet annihilation, or combinations of these processes.

B. Host Material

A suitable host material for use in the present invention, may be a hole transporting host material (sometimes referred to as a hole transporting host), and/or an electron transporting host material (sometimes referred to as an electron transporting host).

The organic layer can also include a host. In some embodiments, two or more hosts are preferred. In some embodiments, the hosts used maybe a) bipolar, b) electron transporting, c) hole transporting or d) wide band gap materials that play little role in charge transport. In some embodiments, the host can include a metal complex. The host can be a triphenylene containing benzo-fused thiophene or benzo-fused furan. Any substituent in the host can be an unfused substituent independently selected from the group consisting of C n H 2n+1 , OC n H 2n+1 , OAr 1 , N(C n H 2n+1 ) 2 , N(Ar 1 )(Ar 2 ), CH═CH—C n H 2n+1 , C≡C—C n H 2n+1 , Ar 1 , Ar 1 -Ar 2 , and C n H 2n —Ar 1 , or no substitution. In the preceding substituents n can range from 1 to 10; and Ar 1 and Ar 2 can be independently selected from the group consisting of benzene, biphenyl, naphthalene, triphenylene, carbazole, and heteroaromatic analogs thereof. In some embodiment, the host can also be an inorganic compound. For example a Zn containing inorganic material, e.g. ZnS.

›DETAILED DESCRIPTION · 14 of 16

The host can be a compound comprising at least one chemical group selected from the group consisting of triphenylene, carbazole, dibenzothiophene, dibenzofuran, dibenzoselenophene, azatriphenylene, azacarbazole, aza-dibenzothiophene, aza-dibenzofuran, and aza-dibenzoselenophene. The host can include a metal complex. The host can be a specific compound selected from the group consisting of:

and combinations thereof.

Hole Transporting Host Material

Specific examples of the hole transporting host materials include, but are not limited to pyrrole, carbazole, azacarbazole, pyrazole, indole, azaindole, imidazole, polyarylalkane, pyrazoline, pyrazolone, phenylenediamine, arylamine, amino-substituted chalcone, styrylanthracene, fluorenone, hydrazone, stilbene, silazane, aromatic tertiary amine compounds, styrylamine compounds, aromatic dimethylidine compounds, porphyrin compounds, polysilane compounds, poly(N-vinylcarbazole), aniline copolymers, electric conductive high-molecular oligomers such as thiophene oligomers, polythiophenes and the like, organic silanes, carbon films, derivatives thereof, and the like. Some preferred host materials include carbazole derivatives, indole derivatives, imidazole derivatives, aromatic tertiary amine compounds, and thiophene derivatives.

Specific examples of the electron transporting host materials include, but are not limited to pyridine, pyrimidine, triazine, imidazole, pyrazole, triazole, oxazole, oxadiazole, fluorenone, anthraquinonedimethane, anthrone, diphenylquinone, thiopyrandioxide, carbodiimide, fluorenylidenemethane, distyrylpyrazine, fluorine-substituted aromatic compounds, aromacyclic tetracarboxylic anhydrides of naphthalene, perylene or the like, phthalocyanine, derivatives thereof, including a variety of metal complexes represented by metal complexes of 8-quinolinol derivatives, metal phthalocyanine, and metal complexes having benzoxazole or benzothiazole as the ligand.

Preferable electron transporting hosts are metal complexes, azole derivatives (benzimidazole derivatives, imidazopyridine derivatives and the like), and azine derivatives (pyridine derivatives, pyrimidine derivatives, triazine derivatives and the like).

C. Film Thickness

In some embodiments, the film thickness of the light-emitting layer is preferably from about 10 nm to about 500 nm. In some embodiments, the film thickness of the light-emitting layer is preferably from about 20 nm to about 100 nm depending, for example, on desired brightness uniformity, driving voltage and brightness. In some embodiments, the light-emitting layer is configured to have a thickness that optimizes passage of charges from the light-emitting layer to adjacent layers without lowering light-emission efficiency. In some embodiments, the light-emitting layer is configured to have a thickness that maintains minimum driving voltage maximum light-emission efficiency.

D. Layer Configuration

The light-emitting layer may be composed of a single layer or two or more layers, and the respective layers may cause light emission in different light-emitting colors. Also, in the case where the light-emitting layer has a laminate structure, though the film thickness of each of the layers configuring the laminate structure is not particularly limited, it is preferable that a total film thickness of each of the light-emitting layers falls within the foregoing range. In some embodiments, graded layers or graded interfaces within the layers may be used.

E. Hole Injection Layer and Hole Transport Layer

The hole injection layer and hole transport layer are layers functioning to receive holes from an anode or from an anode side and to transport the holes to the emitting layer. Materials to be introduced into a hole injection layer or a hole transport layer is not particularly limited, but either of a low molecular compound or a high molecular compound may be used.

Specific examples of the material contained in the hole injection layer and the hole transport layer include, but are not limited to, pyrrole derivatives, carbazole derivatives, azacarbazole derivatives, indole derivatives, azaindole derivatives, imidazole derivatives, polyarylalkane derivatives, pyrazoline derivatives, pyrazolone derivatives, phenylenediamine derivatives, arylamine derivatives, amino-substituted chalcone derivatives, styrylanthracene derivatives, fluorenone derivatives, hydrazone derivatives, stilbene derivatives, silazane derivatives, aromatic tertiary amine compounds, styrylamine compounds, aromatic dimethylidine compounds, phthalocyanine compounds, porphyrin compounds, organosilane derivatives, carbon, and the like.

An electron-accepting dopant may be introduced into the hole injection layer or the hole transport layer in the organic EL element of the present invention. As the electron-accepting dopant to be introduced into the hole injection layer or the hole transport layer, either of an inorganic compound or an organic compound may be used as long as the compound has electron accepting property and a function for oxidizing an organic compound.

Specifically, the inorganic compound includes metal halides such as ferric chloride, aluminum chloride, gallium chloride, indium chloride, antimony pentachloride and the like, and metal oxides such as vanadium pentaoxide, molybdenum trioxide and the like.

In case of employing the organic compounds, compounds having a substituent such as a nitro group, a halogen, a cyano group, a trifluoromethyl group or the like; quinone compounds; acid anhydride compounds; fullerenes; and the like may be preferably applied.

Specific examples hole injection and hole transport materials include compounds described in patent documents such as JP-A Nos. 6-212153, 11-111463, 11-251067, 2000-196140, 2000-286054, 2000-315580, 2001-102175, 2001-160493, 2002-252085, 2002-56985, 2003-157981, 2003-217862, 2003-229278, 2004-342614, 2005-72012, 2005-166637, 2005-209643 and the like.

Specific examples of hole injection and hole transport materials include the organic compounds: hexacyanobutadiene, hexacyanobenzene, tetracyanoethylene, tetracyanoquinodimethane, tetrafluorotetracyanoquinodimethane, p-fluoranil, p-chloranil, p-bromanil, p-benzoquinone, 2,6-dichlorobenzoquinone, 2,5-dichlorobenzoquinone, 1,2,4,5-tetracyanobenzene, 1,4-dicyanotetrafluorobenzene, 2,3-dichloro-5,6-dicyanobenzoquinone, p-dinitrobenzene, m-dinitrobenzene, o-dinitrobenzene, 1,4-naphthoquinone, 2,3-dichloronaphthoquinone, 1,3-dinitronaphthalene, 1,5-dinitronaphthalene, 9,10-anthraquinone, 1,3,6,8-tetranitrocarbazole, 2,4,7-trinitro-9-fluorenone, 2,3,5,6-tetracyanopyridine and fullerene C60. Among these, hexacyanobutadiene, hexacyanobenzene, tetracyanoethylene, tetracyanoquinodimethane, tetrafluorotetracyanoquinodimethane, p-fluoranil, p-chloranil, p-bromanil, 2,6-dichlorobenzoquinone, 2,5-dichlorobenzoquinone, 2,3-dichloronaphthoquinone, 1,2,4,5-tetracyanobenzene, 2,3-dichloro-5,6-dicyanobenzoquinone and 2,3,5,6-tetracyanopyridine are more preferable, and tetrafluorotetracyanoquinodimethane.

›DETAILED DESCRIPTION · 15 of 16

As one or more electron-accepting dopants may be introduced into the hole injection layer or the hole transport layer in the organic EL element of the present invention, these electron-accepting dopants may be used alone or in combinations of two or more. Although precise amount of these electron-accepting dopants used will depend on the type of material, about 0.01% by weight to about 50% by weight of the total weight of the hole transport layer or the hole injection layer is preferred. In some embodiments, the amount of these electron-accepting dopants range from about 0.05% by weight to about 20% by weight of the total weight of the hole transport layer or the hole injection layer. In some embodiments, the amount of these electron-accepting dopants range from about 0.1% by weight to about 10% by weight of the total weight of the hole transport layer or the hole injection layer.

In some embodiments, a thickness of the hole injection layer and a thickness of the hole transport layer are each preferably about 500 nm or less in view of decreasing driving voltage or optimizing for optical outcoupling. In some embodiments, the thickness of the hole transport layer is preferably from about 1 nm to about 500 nm. In some embodiments, the thickness of the hole transport layer is preferably from about 5 nm to about 50 nm. In some embodiments, the thickness of the hole transport layer is preferably from about 10 nm to about 40 nm. In some embodiments, the thickness of the hole injection layer is preferably from about 0.1 nm to about 500 nm. In some embodiments, the thickness of the hole injection layer is preferably from about 0.5 nm to about 300 nm. In some embodiments, the thickness of the hole injection layer is preferably from about 1 nm to about 200 nm.

The hole injection layer and the hole transport layer may be composed of a monolayer structure comprising one or two or more of the above-mentioned materials, or a multilayer structure composed of plural layers of a homogeneous composition or a heterogeneous composition.

F. Electron Injection Layer and Electron Transport Layer

The electron injection layer and the electron transport layer are layers having functions for receiving electrons from a cathode or a cathode side, and transporting electrons to the light emitting layer. An electron injection material or an electron transporting material used for these layers may be a low molecular compound or a high molecular compound. Specific examples of the materials suitable for use in electron injection and electron transport layers include, but are not limited to, pyridine derivatives, quinoline derivatives, pyrimidine derivatives, pyrazine derivatives, phthalazine derivatives, phenanthroline derivatives, triazine derivatives, triazole derivatives, oxazole derivatives, oxadiazole derivatives, imidazole derivatives, fluorenone derivatives, anthraquinodimethane derivatives, anthrone derivatives, diphenylquinone derivatives, thiopyrandioxide derivatives, carbodiimide derivatives, fluorenylidenemethane derivatives, distyrylpyrazine derivatives, aromacyclic tetracarboxylic anhydrides of perylene, naphthalene or the like, phthalocyanine derivatives, metal complexes represented by metal complexes of 8-quinolinol derivatives, metal phthalocyanine, and metal complexes containing benzoxazole, or benzothiazole as the ligand, organic silane derivatives exemplified by silole, and the like.

The electron injection layer or the electron transport layer may contain an electron donating dopant. Suitable electron donating dopant for use in the electron injection layer or the electron transport layer, include any suitable material that may be used as long as it has an electron-donating property and a property for reducing an organic compound. Specific examples of electron donating dopants include an alkaline metal such as Li, an alkaline earth metal such as Mg, a transition metal including a rare-earth metal, and a reducing organic compound. Other examples of metal donating dopants include, metals having a work function of 4.2 V or less, for example, Li, Na, K, Be, Mg, Ca, Sr, Ba, Y, Cs, La, Sm, Gd, Yb, and the like. Specific examples of the reducing organic compounds include nitrogen-containing compounds, sulfur-containing compounds, phosphorus-containing compounds, and the like.

The electron donating dopants may be used alone or in combinations of two or more. In some embodiments, an electron donating dopant is contained in the electron injection layer or the electron transport layer in an amount ranging from about 0.1% by weight to about 99% by weight of the total weight of the electron transport layer material or the electron injecting layer mater. In some embodiments, an electron donating dopant is contained in the electron injection layer or the electron transport layer in an amount ranging from about 1.0% by weight to about 80% by weight of the total weight of the electron transport layer material or the electron injecting layer material. In some embodiments, an electron donating dopant is contained in the electron injection layer or the electron transport layer in an amount ranging from about 2.0% by weight to about 70% by weight of the total weight of the electron transport layer material or the electron injecting layer material.

A thickness of the electron injection layer and a thickness of the electron transport layer are each preferably 500 nm or less in view of decrease in driving voltage. The thickness of the electron transport layer is preferably from 1 nm to 500 nm, more preferably from 5 nm to 200 nm, and even more preferably from 10 nm to 100 nm. A thickness of the electron injection layer is preferably from 0.1 nm to 200 nm, more preferably from 0.2 nm to 100 nm, and even more preferably from 0.5 nm to 50 nm.

The electron injection layer and the electron-transport may be composed of a monolayer structure comprising one or two or more of the above-mentioned materials, or a multilayer structure composed of plural layers of a homogeneous composition or a heterogeneous composition.

›DETAILED DESCRIPTION · 16 of 16

Combination with Other Materials

The materials described herein as useful for a particular layer in an organic light emitting device may be used in combination with a wide variety of other materials present in the device. For example, emissive dopants disclosed herein may be used in conjunction with a wide variety of hosts, transport layers, blocking layers, injection layers, electrodes and other layers that may be present. The materials described or referred to below are non-limiting examples of materials that may be useful in combination with the compounds disclosed herein, and one of skill in the art can readily consult the literature to identify other materials that may be useful in combination.

›HIL/HTL

A hole injecting/transporting material to be used in the present invention is not particularly limited, and any compound may be used as long as the compound is typically used as a hole injecting/transporting material. Examples of the material include, but are not limited to: a phthalocyanine or porphyrin derivative; an aromatic amine derivative; an indolocarbazole derivative; a polymer containing fluorohydrocarbon; a polymer with conductivity dopants; a conducting polymer, such as PEDOT/PSS; a self-assembly monomer derived from compounds such as phosphonic acid and silane derivatives; a metal oxide derivative, such as MoOx; a p-type semiconducting organic compound, such as 1,4,5,8,9,12-Hexaazatriphenylenehexacarbonitrile; a metal complex, and a cross-linkable compound.

Examples of aromatic amine derivatives used in HIL or HTL include, but are not limited to the following general structures:

Each of Ar 1 to Ar 9 is selected from the group consisting of aromatic hydrocarbon cyclic compounds such as benzene, biphenyl, triphenyl, triphenylene, naphthalene, anthracene, phenalene, phenanthrene, fluorene, pyrene, chrysene, perylene, and azulene; the group consisting of aromatic heterocyclic compounds such as dibenzothiophene, dibenzofuran, dibenzoselenophene, furan, thiophene, benzofuran, benzothiophene, benzoselenophene, carbazole, indolocarbazole, pyridylindole, pyrrolodipyridine, pyrazole, imidazole, triazole, oxazole, thiazole, oxadiazole, oxatriazole, dioxazole, thiadiazole, pyridine, pyridazine, pyrimidine, pyrazine, triazine, oxazine, oxathiazine, oxadiazine, indole, benzimidazole, indazole, indoxazine, benzoxazole, benzisoxazole, benzothiazole, quinoline, isoquinoline, cinnoline, quinazoline, quinoxaline, naphthyridine, phthalazine, pteridine, xanthene, acridine, phenazine, phenothiazine, phenoxazine, benzofuropyridine, furodipyridine, benzothienopyridine, thienodipyridine, benzoselenophenopyridine, and selenophenodipyridine; and the group consisting of 2 to 10 cyclic structural units which are groups of the same type or different types selected from the aromatic hydrocarbon cyclic group and the aromatic heterocyclic group and are bonded to each other directly or via at least one of oxygen atom, nitrogen atom, sulfur atom, silicon atom, phosphorus atom, boron atom, chain structural unit and the aliphatic cyclic group. Wherein each Ar is further substituted by a substituent selected from the group consisting of hydrogen, deuterium, halide, alkyl, cycloalkyl, heteroalkyl, arylalkyl, alkoxy, aryloxy, amino, silyl, alkenyl, cycloalkenyl, heteroalkenyl, alkynyl, aryl, heteroaryl, acyl, carbonyl, carboxylic acids, ester, nitrile, isonitrile, sulfanyl, sulfinyl, sulfonyl, phosphino, and combinations thereof.

In one aspect, Ar 1 to Ar 9 is independently selected from the group consisting of:

wherein k is an integer from 1 to 20; X 101 to X 108 is C (including CH) or N; Z 101 is NAr 1 , O, or S; Ar 1 has the same group defined above.

Examples of metal complexes used in HIL or HTL include, but are not limited to the following general formula:

wherein Met is a metal, which can have an atomic weight greater than 40; (Y 101 -Y 102 ) is a bidentate ligand, Y 101 and Y 102 are independently selected from C, N, O, P, and S; L 101 is an ancillary ligand; k′ is an integer value from 1 to the maximum number of ligands that may be attached to the metal; and k′+k″ is the maximum number of ligands that may be attached to the metal.

In one aspect, (Y 101 -Y 102 ) is a 2-phenylpyridine derivative. In another aspect, (Y 101 -Y 102 ) is a carbene ligand. In another aspect, Met is selected from Ir, Pt, Os, and Zn. In a further aspect, the metal complex has a smallest oxidation potential in solution vs. Fc + /Fc couple less than about 0.6 V.

›EBL

An electron blocking layer (EBL) may be used to reduce the number of electrons and/or excitons that leave the emissive layer. The presence of such a blocking layer in a device may result in substantially higher efficiencies, and or longer lifetime, as compared to a similar device lacking a blocking layer. Also, a blocking layer may be used to confine emission to a desired region of an OLED. In some embodiments, the EBL material has a higher LUMO (closer to the vacuum level) and or higher triplet energy than the emitter closest to the EBL interface. In some embodiments, the EBL material has a higher LUMO (closer to the vacuum level) and or higher triplet energy than one or more of the hosts closest to the EBL interface. In one aspect, compound used in EBL contains the same molecule or the same functional groups used as one of the hosts described below.

Host:

The light emitting layer of the organic EL device of the present invention preferably contains at least a metal complex as light emitting material, and may contain a host material using the metal complex as a dopant material. In some embodiments, two or more hosts are preferred. In some embodiments, the hosts used maybe a) bipolar, b) electron transporting, c) hole transporting or d) wide band gap materials that play little role in charge transport. Examples of the host material are not particularly limited, and any metal complexes or organic compounds may be used as long as the triplet energy of the host is larger than that of the dopant. While the Table below categorizes host materials as preferred for devices that emit various colors, any host material may be used with any dopant so long as the triplet criteria is satisfied.

Examples of metal complexes used as host are preferred to have the following general formula:

wherein Met is a metal; (Y 103 -Y 104 ) is a bidentate ligand, Y 103 and Y 104 are independently selected from C, N, O, P, and S; L 101 is an another ligand; k′ is an integer value from 1 to the maximum number of ligands that may be attached to the metal; and k′+k″ is the maximum number of ligands that may be attached to the metal.

In one aspect, the metal complexes are:

wherein (O—N) is a bidentate ligand, having metal coordinated to atoms O and N.

In another aspect, Met is selected from Ir and Pt. In a further aspect, (Y 103 -Y 104 ) is a carbene ligand.

Examples of organic compounds used as host are selected from the group consisting of aromatic hydrocarbon cyclic compounds such as benzene, biphenyl, triphenyl, triphenylene, naphthalene, anthracene, phenalene, phenanthrene, fluorene, pyrene, chrysene, perylene, and azulene; the group consisting of aromatic heterocyclic compounds such as dibenzothiophene, dibenzofuran, dibenzoselenophene, furan, thiophene, benzofuran, benzothiophene, benzoselenophene, carbazole, indolocarbazole, pyridylindole, pyrrolodipyridine, pyrazole, imidazole, triazole, oxazole, thiazole, oxadiazole, oxatriazole, dioxazole, thiadiazole, pyridine, pyridazine, pyrimidine, pyrazine, triazine, oxazine, oxathiazine, oxadiazine, indole, benzimidazole, indazole, indoxazine, benzoxazole, benzisoxazole, benzothiazole, quinoline, isoquinoline, cinnoline, quinazoline, quinoxaline, naphthyridine, phthalazine, pteridine, xanthene, acridine, phenazine, phenothiazine, phenoxazine, benzofuropyridine, furodipyridine, benzothienopyridine, thienodipyridine, benzoselenophenopyridine, and selenophenodipyridine; and the group consisting of 2 to 10 cyclic structural units which are groups of the same type or different types selected from the aromatic hydrocarbon cyclic group and the aromatic heterocyclic group and are bonded to each other directly or via at least one of oxygen atom, nitrogen atom, sulfur atom, silicon atom, phosphorus atom, boron atom, chain structural unit and the aliphatic cyclic group. Wherein each group is further substituted by a substituent selected from the group consisting of hydrogen, deuterium, halide, alkyl, cycloalkyl, heteroalkyl, arylalkyl, alkoxy, aryloxy, amino, silyl, alkenyl, cycloalkenyl, heteroalkenyl, alkynyl, aryl, heteroaryl, acyl, carbonyl, carboxylic acids, ester, nitrile, isonitrile, sulfanyl, sulfinyl, sulfonyl, phosphino, and combinations thereof.

In one aspect, the host compound contains at least one of the following groups in the molecule:

wherein R 101 to R 107 is independently selected from the group consisting of hydrogen, deuterium, halide, alkyl, cycloalkyl, heteroalkyl, arylalkyl, alkoxy, aryloxy, amino, silyl, alkenyl, cycloalkenyl, heteroalkenyl, alkynyl, aryl, heteroaryl, acyl, carbonyl, carboxylic acids, ester, nitrile, isonitrile, sulfanyl, sulfinyl, sulfonyl, phosphino, and combinations thereof, when it is aryl or heteroaryl, it has the similar definition as Ar's mentioned above. k is an integer from 0 to 20 or 1 to 20; k′″ is an integer from 0 to 20. X10‘ to X’ 08 is selected from C (including CH) or N. Z 101 and Z 102 is selected from NR 101 , O, or S.

›HBL

A hole blocking layer (HBL) may be used to reduce the number of holes and/or excitons that leave the emissive layer. The presence of such a blocking layer in a device may result in substantially higher efficiencies and/or longer lifetime as compared to a similar device lacking a blocking layer. Also, a blocking layer may be used to confine emission to a desired region of an OLED. In some embodiments, the HBL material has a lower HOMO and or higher triplet energy than the emitter closest to the HBL interface.

In one aspect, compound used in HBL contains the same molecule or the same functional groups used as host described above.

In another aspect, compound used in HBL contains at least one of the following groups in the molecule:

wherein k is an integer from 1 to 20; L 101 is an another ligand, k′ is an integer from 1 to 3.

›ETL

Electron transport layer (ETL) may include a material capable of transporting electrons. Electron transport layer may be intrinsic (undoped), or doped. Doping may be used to enhance conductivity. Examples of the ETL material are not particularly limited, and any metal complexes or organic compounds may be used as long as they are typically used to transport electrons.

In one aspect, compound used in ETL contains at least one of the following groups in the molecule:

wherein R 101 is selected from the group consisting of hydrogen, deuterium, halide, alkyl, cycloalkyl, heteroalkyl, arylalkyl, alkoxy, aryloxy, amino, silyl, alkenyl, cycloalkenyl, heteroalkenyl, alkynyl, aryl, heteroaryl, acyl, carbonyl, carboxylic acids, ester, nitrile, isonitrile, sulfanyl, sulfinyl, sulfonyl, phosphino, and combinations thereof, when it is aryl or heteroaryl, it has the similar definition as Ar's mentioned above. Ar 1 to Ar 3 has the similar definition as Ar's mentioned above. k is an integer from 1 to 20. X 101 to X 108 is selected from C (including CH) or N.

In another aspect, the metal complexes used in ETL include, but are not limited to the following general formula:

wherein (O—N) or (N—N) is a bidentate ligand, having metal coordinated to atoms O, N or N, N; L 101 is another ligand; k′ is an integer value from 1 to the maximum number of ligands that may be attached to the metal.

Charge Generation Layer (CGL):

In tandem or stacked OLEDs, the CGL plays an essential role in the performance, which is composed of an n-doped layer and a p-doped layer for injection of electrons and holes, respectively. Electrons and holes are supplied from the CGL and electrodes. The consumed electrons and holes in the CGL are refilled by the electrons and holes injected from the cathode and anode, respectively; then, the bipolar currents reach a steady state gradually. Typical CGL materials include n and p conductivity dopants used in the transport layers.

In any above-mentioned compounds used in each layer of the OLED device, the hydrogen atoms can be partially or fully deuterated. Thus, any specifically listed substituent, such as, without limitation, methyl, phenyl, pyridyl, etc. encompasses undeuterated, partially deuterated, and fully deuterated versions thereof. Similarly, classes of substituents such as, without limitation, alkyl, aryl, cycloalkyl, heteroaryl, etc. also encompass undeuterated, partially deuterated, and fully deuterated versions thereof.

In addition to and/or in combination with the materials disclosed herein, many hole injection materials, hole transporting materials, host materials, dopant materials, exciton/hole blocking layer materials, electron transporting and electron injecting materials may be used in an OLED. Non-limiting examples of the materials that may be used in an OLED in combination with materials disclosed herein are listed in Table A below. Table A lists non-limiting classes of materials, non-limiting examples of compounds for each class, and references that disclose the materials.

The invention is explained in greater detail by the following examples, without wishing to restrict it thereby. The person skilled in the art will be able to produce further electronic devices on the basis of the descriptions without inventive step and will thus be able to carry out the invention throughout the range claimed.

›EXAMPLES · 1 of 3

The following syntheses are carried out, unless indicated otherwise, in dried solvents under a protective-gas atmosphere. The metal complexes are additionally handled with exclusion of light. The solvents and reagents can be purchased, for example, from Sigma-ALDRICH or ABCR.

EXAMPLE 1: Synthesis of 3,4-dihydrodibenzo[b,ij]imidazo[2,1,5-de]quinolizine was prepared in accordance with Scheme 1.

A. Synthesis of 4-chlorobutanol

A solution of oxalyl chloride (22.54 ml, 263 mmol) in DCM (400 ml) was cooled in an i PrOH/CO 2 bath. DMSO (37.3 ml, 525 mmol) was slowly via syringe and stirred cold for 1 hour. A solution of 4-chlorobutan-1-ol (19 g, 175 mmol) in 50 mL DCM was added dropwise. The col mixture was stirred for one hour, then, triethylamine (110 ml, 788 mmol) was slowly added. The suspension was stirred cold for 30 minutes, then allowed to warm to room temperature. The reaction was quenched with water, acidified and organics separated. Solvent removal followed by distillation yielded the product as a colorless oil, 8 g.

B. Synthesis of 2-bromo-4-chlorobutanol

4-chlorobutanol (7.939 g, 74.5 mmol) was dissolved in DCM (300 ml) and cooled in an ice bath. A solution of dibromine (4.00 ml, 78 mmol) in DCM (50 ml) was added over about 1 hr. After addition the red solution was stirred cold for 30 minutes, then warmed slowly to room temperature and stirred one more hour. Water was added, the organics were separated, and drying and solvent removal yielded the crude product as a pale yellow oil, 1.57 g (80%).

C. Synthesis of 4-bromophenanthridin-6-amine

2,6-dibromoaniline (15.33 g, 61.1 mmol), 2-(4,4,5,5-tetramethyl-1,3,2-dioxaborolan-2-yl)benzonitrile (7.0 g, 30.6 mmol), and potassium phosphate monohydrate (21.11 g, 92 mmol) were combined in dioxane (120 ml) and water (7.49 ml). The mixture was degassed, then added (dppf)PdCl 2 complex with DCM (0.749 g, 0.917 mmol) was added and the mixture was refluxed for 4 hours. The black mixture was partitioned between EtOAc and water/brine. The organic layer was washed with brine, dried, and solvent was removed. Dissolution in 500 mL EtOAc followed by elution through a silica plug using EtOAc and solvent removal yielded an orange residue that was purified by column chromatography to yield the product as a yellow/orange solid, 5.86 g, 70%.

D. Synthesis of 5-bromo-3-(2-chloroethyl)imidazo[1,2-f]phenanthridine

4-bromophenanthridin-6-amine (5.86, 21.46 mmol), 2-bromo-4-chlorobutanal (5.36 g, 28.9 mmol), and sodium bicarbonate (3.60 g, 42.9 mmol) were combined in 2-propanol (102 ml) and water (5.11 ml). The suspension was stirred at room temperature for 4 hours, then at reflux for 16 hours. Solvent was removed under vacuum and the residue coated on celite. Column chromatography yielded a mixture of the product and starting amidine, which was treated with excess acetyl chloride and triethylamine in DCM. After workup the desired product was extracted from the acetamide by repeated extraction into heptanes, yielding 3.93 g of yellow, tacky residue (51%).

E. Synthesis of 3,4-dihydrodibenzo[b,ij]imidazo[2,1,5-de]quinolizine

5-bromo-3-((2-chloroethyl)imidazo[1,2-f]phenanthridine (3.93 g, 10.93 mmol) was dissolved in THF (200 ml), cooled in an ice bath, and isopropylmagnesium chloride solution in THF (2.0M, 6.01 ml, 12.02 mmol) was slowly added. The solution was stirred for 30 minutes cold, then warmed to room temperature and stirred for 2 more hours. The reaction was quenched, extracted into DCM, and the reaction product was purified using column chromatography to yield 1.90 g of a pale beige, crystalline solid (71%).

An X-ray structure of 3,4-dihydrodibenzo[b,ij]imidazo[2,1,5-de]quinolizine is shown in FIG. 5 . The crystal structure of 3,4-dihydrodibenzo[b,ij]imidazo[2,1,5-de]quinolizine may be defined by one or more of the characteristics listed in the following table.

Formula C 17 H 12 N 2 Data/restr./param. 2107/0/173 MW   244.29 T [K] 100(1) Crystal system Orthorhombic ρ cald [g cm −3 ] 1.410 Space group P2 1 2 1 2 1 μ calcd [mm −1 ] 0.084 Color Colorless Total reflections 22768 a [Å] 6.6974(5) Z 4 b [Å] 11.0502(8)  F(000) 512 c [Å] 15.5459(10) T min /T max 0.894 α [°] 90 Cryst. Size [mm 3 ] 0.42 × 0.22 × 0.08 β [°] 90 R 1 [I > 2σ(I)] a 0.0405 γ [°] 90 wR 2 (all data) a 0.1173 V [Å 3 ] 1150.52(14) GOF a 1.075 a R 1 = Σ||F o | − |F c ||/Σ|F o |; wR 2 = [Σ[w(F o 2 − F c 2 ) 2 ]/Σ[w(F o 2 ) 2 ]] 1/2 ; GOF = [Σw(|F o | − |F c |) 2 /(n − m)] 1/2 a R 1 =Σ∥F o |−|F c ∥/Σ|F o |; wR 2 =[Σ[w(F o 2 −F c 2 ) 2 ]/Σ[w(F o 2 ) 2 ] 1/2 ; GOF=[Σw(|F o |−|F c |) 2 /(n−m)] 1/2

EXAMPLE 2: Synthesis of 4,4-dimethyl-3,4-dihydro-1,2a1-diaza-4-silabenzo[fg]aceanthrylene and 3,3-dimethyl-3,4-dihydro-1,2a1-diaza-3-silabenzo[fg]aceanthrylene:

The ligands above are prepared in accordance with Scheme 2 below.

A. Synthesis of 5-bromoimidazo[1,2-f]phenanthridine

4-bromophenanthridin-6-amine (4.0 g, 14.7 mmol) was dissolved in 100 mL of iPrOH. Chloroacetaldehyde (50% in water, 3.6 g, 22 mmol, 1.5 equiv.) was added, followed by NaHCO 3 (2.5 g, 2 equiv.), and the mixture was refluxed for 2 hours, then cooled in an ice bath. The tan solid was filtered off, washing with MeOH. The receiving flask was changed and the solid was washed with water, resulting in clean, off-white product, 3.2 g. The aqueous washes were extracted with EtOAc and these extracts were combined with the alcoholic washes from the initial filtration. Solvent was removed to yield 1.3 g of an orange solid which was recrystallized from EtOAc, yielding more clean product as tan needles, 0.46 g. Total yield: 3.5 g (80%).

B. Synthesis of 3,5-dibromoimidazo[1,2-f]phenanthridine

Dissolved 5-bromoimidazo[1,2-f]phenanthridine (2.0 g, 6.73 mmol) in DMF (125 ml), then added a solution of NBS (1.318 g, 7.40 mmol) in 10 mL of DMF slowly under nitrogen. After stirring for 3 hours at room temperature, then gentle heating for 16 hours, the reaction mixture was partitioned between 300 mL of water and EtOAc. The aqueous layer was further extracted with EtOAc, the organics washed with water, and the product was isolated by column chromatography as a pale yellow solid, 1.99 g (79%).

›EXAMPLES · 2 of 3

C. Synthesis of 5-bromo-3-((chloromethyl)dimethylsilyl)imidazo[1,2-f]phenanthridine

3,5-dibromoimidazo[1,2-f]phenanthridine (0.48 g, 1.28 mmol) and chloro(chloromethyl)dimethylsilane (0.17 ml, 1.28 mmol) were dissolved in in THF (25 ml) and cooled in iPrOH/CO 2 bath. Butyllithium solution in hexanes (2.5 M, 0.51 ml, 1.28 mmol) was added slowly, the mixture was stirred cold for 30 minutes, then allowed to warm to room temperature. Brine was added to quench the reaction, the organics were extracted into EtOAc and purified by column chromatography to yield the product as a colorless, tacky residue, 0.16 g (31%).

D. Synthesis of 4,4-dimethyl-3,4-dihydro-1,2a1-diaza-4-silabenzo[fg]aceanthrylene and 3,3-dimethyl-3,4-dihydro-1,2a1-diaza-3-silabenzo[fg]aceanthrylene

5-bromo-3-((chloromethyl)dimethylsilyl)imidazo[1,2-f]phenanthridine (0.13 g, 0.322 mmol) was dissolved in THF (25 ml) and cooled in an ice bath. Isopropylmagnesium chloride solution in THF (2.0 M, 0.18 ml, 0.36 mmol) was added slowly, then warmed to room temperature. The reaction was quenched with brine, organics were extracted with DCM, and the mixture chromatographed to yield 16 mg of 4,4-dimethyl-3,4-dihydro-1,2a1-diaza-4-silabenzo[fg]aceanthrylene as a tacky residue (17%), and 33 mg of 3,3-dimethyl-3,4-dihydro-1,2a1-diaza-3-silabenzo[fg]aceanthrylene as a crystalline solid (36%).

Furthermore, all organic materials used in this example were sublimation-purified and analyzed by high-performance liquid chromatography (Tosoh TSKgel ODS-100Z), and materials having 99.9% or higher of an absorption intensity area ratio at 254 nm were used.

An X-ray structure of 3,3-dimethyl-3,4-dihydro-1,2a1-diaza-3-silabenzo[fg]aceanthrylene is shown in FIG. 6 . The crystal structure of 3,3-dimethyl-3,4-dihydro-1,2a1-diaza-3-silabenzo[fg]aceanthrylene may be defined by one or more of the characteristics listed in the following table.

EXAMPLE 3: Synthesis of platinum(II) complex of 6-isopropyl-10-((9-(4-isopropylpyridin-2-yl)-9H-carbazol-2-yl)oxy)-3,4-dihydrodibenzo[b,ij]imidazo[2,1,5-de]quinolizine:

A. Synthesis of 2-Bromo-5-methoxybenzonitrile

A mixture of 2-bromo-5-methoxybenzaldehyde (100 g, 0.47 mol, 1 equiv), hydroxylamine hydrochloride (64.8 g, 0.93 mol, 2 equiv), sodium acetate (76.42 g, 0.93 mol, 2 equiv) and glacial acetic acid (500 mL) was refluxed for 16 hours. The acetic acid was removed under reduced pressure and the residue was extracted with dichloromethane (˜400 mL). The organic layer was washed with saturated brine (3×200 mL), dried over sodium sulfate and concentrated under reduced pressure. The resulting residue was triturated with heptanes (50 mL) and solids washed with additional heptanes (2×50 mL) to give the desired product as a white powder (82.6 g, 86% yield).

B. Synthesis of 5-Methoxy-2-(4,4,5,5-tetramethyl-1,3,2-dioxaborolan-2-yl)benzonitrile

A mixture of 2-bromo-5-methoxybenzonitrile (82.6 g, 0.39 mol, 1 equiv), bis(pinacolato)diboron (109.1 g, 0.43 mol, 1.1 equiv) and potassium acetate (115.3 g, 1.17 mol, 3 equiv) in a mixture of 1,4-dioxane (400 mL) and DMSO (40 mL) was sparged with nitrogen for 1 hour. Pd(dppf)Cl 2 (7.13 g, 5 mol %) was added and reaction mixture was gently heated at 60° C. for 2 hours then refluxed for 16 hours. The mixture was filtered through celite and the solids isolated from the filtrates were washed with isopropanol and heptanes to give the desired product as an off-white solid (57.41 g, 57% yield). Additional product (˜10 g) was isolated from the filtrates.

C. Synthesis of 4-Bromo-2-isopropyl-8-methoxyphenanthridin-6-amine

A mixture of 5-methoxy-2-(4,4,5,5-tetramethyl-1,3,2-dioxaborolan-2-yl)benzo-nitrile (57.41 g, 0.22 mol, 1 equiv), 2,6-dibromo-4-iso-propylaniline (64.92 g, 0.22 mol, 1 equiv) and potassium phosphate (153.1 g, 0.66 mol, 3 equiv) in a 4:1 mixture of toluene and water (1250 mL) was sparged with nitrogen for 1 hour. trans-Pd(PPh 3 ) 2 Cl 2 (7.8 g, 11 mmol, 0.05 equiv) was added and the reaction mixture was refluxed for 20 hours. Additional potassium phosphate (77 g, 0.33 mol, 1.5 equiv) and trans-Pd(PPh 3 ) 2 Cl 2 (1 g, 1.43 mmol, 0.0065 equiv) were added and the reaction mixture was refluxed for an additional 3 hours. The layers were separated and the organic layer was washed with hot water (2×400 mL). The organic layer was dried over sodium sulfate and concentrated under reduced pressure. The resulting solid was triturated sequentially with dichloromethane and heptanes. Column chromatography gave the desired product (30 g).

D. Synthesis of 6-Isopropyl-10-((9-(4-isopropylpyridin-2-yl)-9H-carbazol-2-yl)oxy)-3,4dihydro-dibenzo[b,ij]imidazo[2,1,5-de]quinolizine

A suspension of 4-bromo-2-isopropyl-8-methoxyphenanthridin-6-amine (8.9 g, 25.8 mmol, 1 equiv), p-toluenesulfonic acid monohydrate (348 mg), freshly prepared 2-bromo-4-chlorobutanal (24 g, 129 mmol, 5 equiv) and iso-propanol (500 mL) was stirred at room temperature for 2.5 hours. Sodium carbonate (6.5 g, 77.4 mmol, 3 equiv) and deionized water (32 ml) were added, and the reaction mixture was refluxed for 16 hours. After cooling to room temperature, the volume of reaction mixture was reduced to ˜100 mL under reduced pressure. The mixture was diluted with ethyl acetate (350 mL) and washed with saturated brine (200 mL). The organic layer was dried over sodium sulfate and concentrated under reduced pressure. The crude product was purified by column chromatography to yield 8.44 g of product (76% yield).

E. Synthesis of 6-Isopropyl-10-methoxy-3,4-dihydrodibenzo[b,ij]imidazo[2,1,5-de]quinolizine

A solution of 6-Isopropyl-10-((9-(4-isopropylpyridin-2-yl)-9H-carbazol-2-yl)oxy)-3,4dihydro-dibenzo[b,ij]imidazo[2,1,5-de]quinolizine (8.44 g, 19.6 mmol, 1.0 equiv) in dry THF (250 mL) was sparged with nitrogen for 30 minutes). After cooling to 0° C., 2M isopropylmagnesium chloride (14.7 mL, 29.4 mmol, 1.5 equiv) in THF was added dropwise. The reaction mixture was warmed up to room temperature and stirred for 16 hours. The reaction was quenched with water (10 mL) and the THF was removed under reduced pressure. The residue was diluted with ethyl acetate (400 mL) and washed with saturated brine (2×200 mL). The organic layer was dried over sodium sulfate and the residue was purified by column chromatography to give 3.6 g of product (58% yield).

›EXAMPLES · 3 of 3

F. Synthesis of 6-Isopropyl-3,4-dihydrodibenzo[b,ij]imidazo[2,1,5-de]quinolizin-10-ol

Boron tribromide (5.4 mL, 56.78 mmol, 5 equiv) was added dropwise at −78° C. to a solution of 6-Isopropyl-10-methoxy-3,4-dihydrodibenzo[b,ij]imidazo[2,1,5-de]quinolizine (3.6 g, 11.36 mmol, 1 equiv) in dichloromethane (200 mL). The reaction was warmed to room temperature and stirred for 16 hours. The reaction mixture was carefully poured into 300 ml of ice water and the resulting solid was filtered and washed sequentially with water (70 mL), ethyl acetate (40 mL) and heptanes (40 mL) to give 3.6 g of product (quantitative yield).

G. Synthesis of 4′-Bromo-2-nitro-1,1′-biphenyl

A solution of potassium carbonate (84 g, 608 mmol, 3.0 equiv) in water (450 mL) was added to a mixture of 2-iodo-nitrobenzene (50 g, 200 mmol, 1.0 equiv) and 4-bromobenzeneboronic acid (40.7 g, 202 mol, 1.0 equiv) in 1,2-dimethoxyethane (660 mL). The reaction was sparged with nitrogen for 5.0 minutes. Tetrakis(triphenylphosphine)palladium(0) (2.32 g, 2 mmol, 1 mol %) was added and the mixture was sparged with nitrogen for an additional 10 minutes. After refluxing for 16 hours, the reaction was cooled to room temperature and the layers were separated. The aqueous layer was extracted with ethyl acetate (500 mL). The combined organic extracts were washed with saturated brine (500 mL), dried over sodium sulfate, filtered and concentrated under reduced pressure. The residue was dissolved in 25% ethyl acetate in heptanes (300 mL) and vacuum filtered through a pad of silica gel (135 g). The pad was rinsed with 25% ethyl acetate in heptanes (3×350 mL). The combined filtrates were concentrated under reduced pressure giving an orange solid. This residue was suspended in heptanes (150 mL) and heated to 40° C. for 20 minutes. The suspension was allowed to cool to room temperature for 1.0 hour. The solid was collected by vacuum filtration, washed with heptanes (50 mL) and dried to give 4′-bromo-2-nitro-1,1′-biphenyl as a yellow solid (49.16 g, 88.4% yield).

H. Synthesis of 2-Bromo-9H-carbazole

Triphenylphosphine (156.3 g, 596 mmol, 2.5 equiv) was added over 5 minutes to a solution 4′-bromo-2-nitro-1,1′-biphenyl (66.25 g, 238 mmol, 1.0 equiv) in 1,2-dichlorobenzene (460 mL). The reaction was sparged with nitrogen 5 minutes, then refluxed for 16 hours. The reaction was cooled to room temperature and vacuum distilled to remove most of the 1,2-dichlorobenzene (450 mL). This dark residue was dissolved in ethyl acetate (1.5 L) and treated with decolorizing carbon (50 g) at 50° C. for 30 minutes. After cooling, the mixture was filtered through Celite (200 g), then washed with ethyl acetate washes (2×650 mL). The combined filtrates were concentrated under reduced pressure to a volume of ˜500 mL. The solution was cooled to room temperature and after 1.5 hours, the resulting pale tan solid (triphenylphosphine oxide) was removed by filtration and discarded. The filtrate was concentrated under reduced pressure. The residue was dissolved in methanol (600 mL) and stored at room temperature for 16 hours. The resulting tan solid was filtered, washed with methanol (2×100 mL) and dried under vacuum at 40° C. to give 2-bromo-9H-carbazole as a pale tan solid (33.5 g, 57.2% yield).

I. Synthesis of 2-Bromo-9-(4-isopropylpyridin-2-yl)-9H-carbazole

A suspension of 2-bromo-9H-carbazole (13.9 g, 56.5 mmol, 1 equiv), 4-isopropyl-2-chloropyridine (15.86 g, 101.7 mmol, 1.8 equiv), L-proline (1.3 g, 11.3 mmol, 0.2 equiv), copper (1) iodide (0.95 g, 5.65 mmol, 0.1 equiv), potassium carbonate (19.48 g, 141.25 mmol, 2.5 equiv) and DMSO (80 mL) was sparged with nitrogen for 5 minutes. The mixture was heated at 95° C. for 16 hours. Additional 4-isopropyl-2-chloropyridine (1.58 g, 10.12 mmol, 0.18 equiv) was added, the reaction mixture was heated at 155° C. for an additional 24 hours. The reaction mixture was cooled to room temperature, diluted with ethyl acetate (750 mL), and vacuum filtered through celite (70 g). The celite pad was washed with ethyl acetate washes (2×100 mL). The combined filtrates were washed with saturated brine (3×500 mL), dried over sodium sulfate, filtered and concentrated under reduced pressure. This residue was purified by column chromatography to give 1.8 g of product as a brown oil (8.6% yield).

J. Synthesis of 6-Isopropyl-10-((9-(4-isopropylpyridin-2-yl)-9H-carbazol-2-yl)oxy)-3,4-dihydrodibenzo[b,ij]imidazo[2,1,5-de]quinolizine

A mixture of 6-Isopropyl-3,4-dihydrodibenzo[b,ij]imidazo[2,1,5-de]quinolizin-10-ol (1.5 g, 4.93 mmol, 1 equiv), 2-Bromo-9-(4-isopropylpyridin-2-yl)-9H-carbazole (1.8 g, 4.93 mmol, 1 equiv), potassium phosphate (5.68 g, 24.65 mmol, 5 equiv), copper(I) iodide (0.47 g, 2.47 mmol, 0.5 equiv), picolinic acid (1.52 g, 12.33 mmol, 2.5 equiv) and DMSO (150 mL) was heated at 150° C. for 4.5 hours. After cooling to room temperature, the reaction mixture was poured into water (700 mL) and extracted with ethyl acetate (4×150 mL). The combined organic layers were dried over sodium sulfate and concentrated in under reduced pressure. The crude product was purified by column chromatography to yield product as a tan solid, 1.25 g (43% yield).

K. Synthesis of platinum(II) complex of 6-isopropyl-10-((9-(4-isopropylpyridin-2-yl)-9H-carbazol-2-yl)oxy)-3,4-dihydrodibenzo[b,ij]imidazo[2,1,5-de]quinolizine

6-Isopropyl-10-((9-(4-isopropylpyridin-2-yl)-9H-carbazol-2-yl)oxy)-3,4-dihydrodibenzo[b,ij]imidazo[2,1,5-de]quinolizine (400 mg, 0.68 mmol, 1 equiv) was dissolved in 60 ml of glacial acetic acid and sparged with nitrogen for 30 minutes. Then K 2 PtCl 4 (283 mg, 0.68 mmol, 1 equiv) was added, and the reaction mixture was refluxed for 40 hours. After cooling to room temperature, the orange precipitate was filtered and washed sequentially with water (3×15 mL) and heptanes (10 ml×2 times). The crude product (340 mg) was dissolved in 10 ml of dichloromethane and filtered through a plug of silica gel to remove residual K 2 PtCl 4 , eluting with additional dichloromethane (10 mL). The filtrate was reduced to half its volume and diluted with heptanes (10 mL). The product was filtered and triturated with a 10% solution of dichloromethane in heptanes (10 mL) to give product as a light yellow solid (140 mg, 26% yield). Additional product was isolated from the acetic acid and dichloromethane/heptane filtrates.

›Examples11
›EXAMPLE 4: Synthesis of (3-phenyl-1H-pyrazole) 2 Ir(MeOH) 2 (OTf)

A. Synthesis of (3-phenyl-1H-pyrazole) 2 IrCl 2 Dimer

Iridium chloride hydrate (6.00 g, 17.02 mmol) and 1-phenyl-1H-pyrazole (5.89 g, 40.9 mmol) were combined in 2-ethoxyethanol (120 ml) and water (40 ml). The reaction mixture was heated to reflux for 16 hours under nitrogen. The resulting solid was filtered off and washed with methanol and dried to yield 8.3 g of the iridium dimer.

The iridium dimer of Example 4A (8.3 g, 8.07 mmol) was dissolved in 100 mL of DCM and a solution of silver triflate (4.36 g, 16.96 mmol) in 20 mL of methanol was added. The reaction mixture was stirred at room temperature under nitrogen for 1 hour. The mixture was filtered through celite and the cake was washed with DCM. The filtrates were evaporated to yield 10.85 g of of (3-phenyl-1H-pyrazole) 2 Ir(MeOH) 2 (OTf) (97%).

›EXAMPLE 5: Exemplary Compound 35 was Prepared According to Scheme 5 · 1 of 2

A. Synthesis of imidazo[1,2-f]phenanthridine

A mixture of 2-phenyl-1H-imidazole (10.0 g, 69.3 mmol, 1 equiv), 1,2-dibromobenzene (19.63 g, 83.2 mmol, 1.2 equiv), cesium carbonate (67.79 g, 208.0 mmol, 3 equiv), Xantphos (4.01 g, 6.9 mmol, 0.1 equiv) and tetrakis(triphenylphosphine)palladium (8.01 g, 6.9 mmol, 0.1 equiv) in DMF (550 mL) was sparged with a stream of nitrogen for 15 minutes. The mixture was heated at 140° C. for 24 hours, then concentrated under reduced pressure. The residue was purified by column chromatography to imidazo[1,2-f]phenanthridine (10 g, 67% yield) as pale yellow solid.

B. Synthesis of 3-Bromoimidazo[1,2-f]phenanthridine

N-bromosuccinimide (1.62 g, 9.1 mmol, 1 equiv) was added to a solution of 15 (1.99 g, 9.1 mmol, 1 equiv) in DMF (32 mL) at 0° C. After stirring at room temperature for 18 hours, the reaction was diluted with water (300 mL) and sequentially extracted with 10% dichloromethane in methyl t-butyl ether (3×500 mL), ethyl acetate (2×300 mL) and dichloromethane (400 mL). The combined organic layers were dried over sodium sulfate, filtered and concentrated under reduced pressure. The residue was purified by column chromatography to yield 3-Bromoimidazo[1,2-f]phenanthridine (1.66 g, 65% yield) as an off-white solid.

C. Synthesis of tert-Butyl 2-(imidazo[1,2-f]phenanthridin-3-yl)acetate

Di-p-bromobis(tri-t-butylphosphino)dipalladium (I) (2.01 g, 2.5 mmol, 0.05 equiv) was added to a solution of 16 (15.4 g, 51.8 mmol, 1 equiv) in anhydrous tetrahydrofuran (220 mL) and the solution was sparged with a stream of nitrogen for 15 minutes. 0.5M 2-tert-butoxy-2-oxoethylzinc bromide in diethyl ether (155 mL, 77.7 mmol, 1.5 equiv) was added under nitrogen. The reaction was stirred at 60° C. for 16 hours. Additional 0.5M 2-tert-butoxy-2-oxoethylzinc chloride solution (155 mL, 77.7 mmol, 1.5 equiv) and di-g-bromobis(tri-t-butylphosphino)-dipalladium (I) (2.01 g, 2.5 mmol, 0.05 equiv) were added and the reaction was stirred at 60° C. until LC/MS analysis indicated it was complete. The reaction mixture was concentrated under reduced pressure. The residue was dissolved in dichloromethane (1 L) and filtered through a Celite pad. The filtrate was concentrated under reduced pressure. The residue was purified by column chromatography to give tert-Butyl 2-(imidazo[1,2-f]phenanthridin-3-yl)acetate (5 g, 30% yield) as an orange solid.

D. Synthesis of Methyl 2-(imidazo[1,2-f]phenanthridin-3-yl)acetate hydrochloride

A solution of 17 (2.8 g, 8.4 mmol, 1 equiv) in 1.25M HCl (55 mL, 68.7 mmol, 6.5 equiv) in methanol was stirred at 60° C. for 16 hours. The reaction mixture was concentrated under reduced pressure. The residue was washed with diethyl ether and dried under vacuum for 16 hours at 40° C. to give methyl 2-(imidazo[1,2-f]phenanthridin-3-yl)acetate hydrochloride (2.5 g, 100% yield) as an off-white solid.

E. Synthesis of Methyl 2-(imidazo[1,2-f]phenanthridin-3-yl)-2-methylpropanoate

A 60% dispersion of sodium hydride in mineral oil (2.45 g, 61.2 mmol, 5 equiv) and iodomethane (2 mL, 32.1 mmol, 2.6 equiv) were sequentially added to a solution of methyl 2-(imidazo[1,2-f]phenanthridin-3-yl)acetate hydrochloride (4.0 g, 12.24 mmol, 1 equiv) in anhydrous DMF (45 mL) at 5° C. The mixture was stirred in a cooling bath for 30 minutes, warmed to room temperature and stirred for 6 hours. Additional iodomethane (1.2 mL, 19.2 mmol, 1.6 equiv) was added. The reaction was stirred at room temperature over a weekend, quenched with methanol (32 mL) and concentrated under reduced pressure. The residual oil was diluted with dichloromethane (350 mL) and washed with water (100 mL). The aqueous layer was extracted with dichloromethane (2×100 mL). The combined organic layers were washed with saturated ammonium chloride (100 mL), dried over sodium sulfate, filtered and concentrated under reduced pressure. The residue was purified by column chromatography to give methyl 2-(imidazo[1,2-f]phenanthridin-3-yl)-2-methylpropanoate (1.6 g, 41% yield) as an off-white solid.

F. Synthesis of 2-(Imidazo[1,2-f]phenanthridin-3-yl)-2-methylpropanoic acid

A solution of methyl 2-(imidazo[1,2-f]phenanthridin-3-yl)-2-methylpropanoate (1.6 g, 5.0 mmol, 1 equiv) in methanol (100 mL) was treated with aqueous 1N sodium hydroxide (30 mL, 30 mmol, 6 equiv) and further diluted with water (100 mL). After refluxing for 5 days, the reaction was concentrated under reduced pressure. The residue was dissolved in water (100 mL) and acidified with conc. HCl to pH 5-6. The resulting white suspension was extracted with 1 to 2 mixture of isopropanol and dichloro-methane (4×200 mL). The combined organic layers were dried over sodium sulfate, filtered, concentrated under reduced pressure. The residue was dried under high vacuum at 40° C. for 16 hours to give 2-(Imidazo[1,2-f]phenanthridin-3-yl)-2-methylpropanoic acid (1.3 g, 82% yield) as white solid.

G. Synthesis of 2-(Imidazo[1,2-f]phenanthridin-3-yl)-2-methylpropanoyl chloride

Thionyl chloride (1 mL, 13.7 mmol, 2 equiv) and anhydrous DMF (0.05 mL, 0.6 mmol, 0.11 equiv) were added to a suspension of 2-(Imidazo[1,2-f]phenanthridin-3-yl)-2-methylpropanoic acid (1.3 g, 4.2 mmol, 1 equiv) in anhydrous dichloromethane (100 mL). After stirring at room temperature for 16 hours, the mixture was concentrated under reduced pressure to give the 2-(Imidazo[1,2-f]phenanthridin-3-yl)-2-methylpropanoyl chloride (1.37 g, 100% yield) as an off-white solid.

H. Synthesis of 3,3-Dimethyldibenzo[b,ij]imidazo[2,1,5-de]quinolizin-4(3H)-one

A mixture of 2-(Imidazo[1,2-f]phenanthridin-3-yl)-2-methylpropanoyl chloride (1.37 g, 4.2 mmol, 1 equiv) and anhydrous aluminum chloride (6.0 g, 44.9 mmol, 10 equiv) in anhydrous dichloromethane (60 mL) was stirred at room temperature for 6 hours. The reaction was cooled with an ice-water bath, quenched with ice, diluted with saturated sodium bicarbonate (300 mL) and extracted with dichloromethane (4×400 mL). The combined organic layers were dried over sodium sulfate, filtered and concentrated under reduced pressure. The residue was purified using column chromatography to give 3,3-dimethyldibenzo[b,ij]imidazo[2,1,5-de]quinolizin-4(3H)-one (1 g, 81% yield) as a white solid.

›EXAMPLE 5: Exemplary Compound 35 was Prepared According to Scheme 5 · 2 of 2

I. Synthesis of 3,3-Dimethyl-3,4-dihydrodibenzo[b,ij]imidazo[2,1,5-de]quinolizin-4-ol

Sodium borohydride (0.24 g, 6.3 mmol, 2 equiv) was added in one portion to a solution of 3,3-dimethyldibenzo[b,ij]imidazo[2,1,5-de]quinolizin-4(3H)-one (0.9 g, 3.1 mmol, 1 equiv) in ethanol (70 mL) at 5° C. The reaction was stirred at room temperature for 1.5 hours and then quenched with acetone (2 mL). The reaction mixture was concentrated under reduced pressure. The residue was dissolved in methyl t-butyl ether (300 mL), washed with saturated sodium bicarbonate (2×60 mL) and saturated brine (60 mL). The organic layer was dried over sodium sulfate, filtered and concentrated under reduced pressure. The crude product was purified by column chromatography to give 3,3-Dimethyl-3,4-dihydrodibenzo[b,ij]imidazo[2,1,5-de]quinolizin-4-ol (0.9 g, 100% yield) as a white solid.

J. o-(3,3-Dimethyl-3,4-dihydrodibenzo[b,ij]imidazo[2,1,5-de]quinolizin-4-yl) S-methyl carbonodithioate

A 60% dispersion of sodium hydride (0.48 g, 20.2 mmol, 5 equiv) in mineral oil was added to a solution of 3,3-Dimethyl-3,4-dihydrodibenzo[b,ij]imidazo[2,1,5-de]quinolizin-4-ol (0.71 g, 2.46 mmol, 1 equiv) in anhydrous THF (70 mL) at 0° C. After stirring for 30 minutes at 5° C., a solution of imidazole (0.0168 g, 0.24 mmol, 0.1 equiv) in anhydrous tetrahydrofuran (3.2 mL) was added, followed by the dropwise addition of carbon disulfide (0.89 mL, 14.8 mmol, 6 equiv). The reaction was allowed to slowly warm to 12° C. over 30 minutes. Iodomethane (0.92 mL, 14.7 mmol, 6 equiv) was added dropwise (exothermic) and the reaction was stirred at room temperature for 1 hour. The reaction mixture was cooled to 5° C., diluted with saturated brine (140 mL) and extracted with dichloromethane (5×100 mL). The combined organic layers were dried over sodium sulfate, filtered and concentrated under reduced pressure. The crude product was purified by column chromatography to give o-(3,3-Dimethyl-3,4-dihydrodibenzo[b,ij]imidazo[2,1,5-de]quinolizin-4-yl) S-methyl carbonodithioate (0.86 g, 93% yield) as a white solid.

K. Synthesis of 3,3-Dimethyl-3,4-dihydrodibenzo[b,ij]imidazo[2,1,5-de]quinolizine

A solution of o-(3,3-Dimethyl-3,4-dihydrodibenzo[b,ij]imidazo[2,1,5-de]quinolizin-4-yl) S-methyl carbonodithioate (0.98 g, 2.6 mmol, 1 equiv), 2,2′-azabis(2-methylpropionitrile) (0.098 g, 0.6 mmol, 0.2 equiv) and tributyltin hydride (1.81 mL, 6.7 mmol, 2.6 equiv) in anhydrous toluene (70 mL) was stirred at 80° C. for 3.5 hours. After cooling to room temperature, the reaction mixture was concentrated under reduced pressure at 35° C. and absorbed onto silica gel (10 g). The crude material was purified by column chromatography to give 3,3-Dimethyl-3,4-dihydrodibenzo[b,ij]imidazo[2,1,5-de]quinolizine (0.53 g, 72% yield) as a white solid.

L. Synthesis of (3-chloropropyl)(methyl)sulfane

Sodium methanethiolate (6.14 g, 88 mmol) was dissolve in 50 mL of EtOH, cooled in an ice bath, then 1-bromo-3-chloropropane (8.6 ml, 87 mmol) was added. The solution was warmed to room temperature and stirred for 2 hours. The precipitated solids were filtered and the filtrates condensed under vacuum. The residue was distilled under vacuum to yield the product as a colorless oil, 36%.

M. Synthesis of tris-[(3-methylthio)propyl]iridium(III)

(3-chloropropyl)(methyl)sulfane was synthesized by stirring the Grignard made from (3-chloropropyl)(methyl)sulfane and magnesium turnings with IrCl 3 (THT) 3 in THF, followed by column chromatography to yield a white solid, 32%.

N. Synthesis of Compound 35

tris-[(3-methylthio)propyl]iridium(III) from Example 5M (0.020 g, 0.044 mmol) and 3,3-Dimethyl-3,4-dihydrodibenzo[b,ij]imidazo[2,1,5-de]quinolizine from Example 5K (0.036 g, 0.131 mmol) were combined in ethylene glycol (0.5 ml), degassed by vacuum/backfill cycles, and stirred at reflux, turning yellow then black. The cooled residue was partitioned between water and DCM, the organics were dried and coated on celite. Purification by column chromatography yielded 4 mg of Compound 35 as a beige solid (9%).

›EXAMPLE 6: Synthesis of Compound 48 was Carried Out as in Scheme 6

(3-phenyl-1H-pyrazole) 2 Ir(MeOH) 2 (OTf) from Example 4 (0.031 g, 0.045 mmol) and 3,3-Dimethyl-3,4-dihydrodibenzo[b,ij]imidazo[2,1,5-de]quinolizine from Example 5K (0.024 g, 0.090 mmol) were combined in 2-ethoxyethanol (0.5 ml), vacuum/backfill quickly three times, then heated at reflux under nitrogen for 2 hours. The reaction mixture was dissolved in DCM, coated on celite, and purified by column chromatography to yield Compound 35 as a nearly colorless residue, 6 mg (18%).

›EXAMPLE 7: Synthesis of Compound 49 was carried out according to Scheme 7 below · 1 of 2

A. Synthesis of 1-Methylphenanthridin-6-amine

A mixture of 2-bromo-3-methylaniline (38.8 g, 208 mmol, 1 equiv), (chloro(2-dicyclohexylphosphino-2′,6′-dimethoxy-1,1′-biphenyl)[2-(2′-amino-1,1′-biphenyl)]palladium(II) (2.99 g, 4.16 mmol, 0.02 equiv), 2-dicyclohexyl-phosphino-2′,6′-dimethoxybiphenyl (1.71 g, 4.16 mmol, 0.02 equiv) in THF (832 mL) was sparged with nitrogen for 15 minutes. (2-Cyanophenyl)zinc bromide solution (500 mL, 0.5 M in THF, 250 mmol, 1.2 equiv) was added to the mixture and the reaction was refluxed for 16 hours. After cooling to room temperature, the reaction was diluted with saturated brine (10 mL) and concentrated under reduced pressure. The solids were dissolved in 10% methanol in dichloromethane (500 mL) and 24% wt. aqueous sodium hydroxide (500 mL). The layers were separated and the aqueous was extracted with dichloromethane (3×500 mL). The combined organic layers were dried over sodium sulfate, and concentrated under reduced pressure. The brown solid was sequentially triturated with 25% MTBE in heptanes (1.5 L) and dichloromethane (5×25 mL) to give 26 (10.7 g, 25% yield, >95% purity) as a pale yellow solid.

B. Synthesis of 8-Methylimidazo[1,2-f]phenanthridine

A mixture of 1-methylphenanthridin-6-amine (10.7 g, 51 mmol, 1 equiv), 50% wt chloroacetaldehyde in water (16 mL, 102 mmol, 2 equiv), sodium carbonate (13.5 g, 128 mmol, 2.5 equiv) in isopropanol (340 mL) was refluxed for 2 hours. The reaction was cooled to 4° C. and diluted with dichloromethane (250 mL) and saturated sodium bicarbonate (500 mL). The layers were separated and the aqueous layer was extracted with dichloromethane (3×250 mL). The combined organics layers were dried over sodium sulfate, and concentrated under reduced pressure to give crude 8-methylimidazo[1,2-f]phenanthridine (23.8 g) as a brown solid, which was used subsequently.

C. Synthesis of 3-Bromo-8-methylimidazo[1,2-f]phenanthridine

A mixture of crude 8-methylimidazo[1,2-j]phenanthridine (23.8 g), N-bromosuccinimide (9.1 g, 51 mmol, 1 equiv) in dichloromethane (306 mL) was stirred at room temperature for 2 hours. Water (500 mL) was added and the layers were separated. The aqueous was extracted with dichloromethane (3×500 mL). The combined organic layers were dried over sodium sulfate and concentrated under reduced pressure. The solids were pre-absorbed onto silica gel and purified by column chromatography to give 3-bromo-8-methylimidazo[1,2-j]phenanthridine (12 g, 98% purity) as a light brown solid.

D. Synthesis of 8-Methyl-3-(2-methylprop-1-en-1-yl)imidazo[1,2-]phenanthridine

A mixture of 3-bromo-8-methylimidazo[1,2-f]phenanthridine (12 g, 38.5 mmol, 1 equiv), 4,4,5,5-tetramethyl-2-(2-methylprop-1-en-1-yl)-1,3,2-dioxaborolane (10.5 g, 58 mmol, 1.5 equiv), and potassium carbonate (16 g, 115.5 mmol, 3 equiv) in a 5 to 1 mixture of 1,4-dioxane and water (185 mL) was sparged with nitrogen for 15 minutes. (Chloro(2-dicyclohexylphosphino-2′,6′-dimethoxy-1,1′-biphenyl)[2-(2′-amino-1,1′-biphenyl)]palladium(II) (4.16 g, 5.78 mmol, 0.15 equiv) and 2-dicyclohexylphosphino-2′,6′-dimethoxybiphenyl (2.38 g, 5.78 mmol, 0.15 equiv) were added and the reaction was refluxed for 36 hours. After cooling to room temperature, the reaction was diluted with water (200 mL). The layers were separated and the aqueous was extracted with ethyl acetate (3×200 mL). The combined organics layers were dried over sodium sulfate and concentrated under reduced pressure. The crude solid was purified by column chromatography to give 8-methyl-3-(2-methylprop-1-en-1-yl)imidazo[1,2-f]phenanthridine (8.5 g, 70% yield, 90% purity) as a light brown solid.

E. Synthesis of 4,4,7-Trimethyl-3,4-dihydrodibenzo[b,ij]imidazo[2,1,5-de]quinolizine

A mixture of 8-methyl-3-(2-methylprop-1-en-1-yl)imidazo[1,2-f]phenanthridine (1.6 g, 5.69 mmol, 1 equiv) and anhydrous aluminum chloride (3.8 g, 28.4 mmol, 5 equiv) in dichloromethane (57 mL) were stirred at room temperature for 16 hours. The reaction was cooled in an ice bath and water (10 mL) was added dropwise. The layers were separated and the aqueous layer was extracted with dichloromethane (3×50 mL). The combined organic layers were dried over sodium sulfate and concentrated under reduced pressure. The crude solids purified by column chromatography to give 4,4,7-Trimethyl-3,4-dihydrodibenzo[b,ij]imidazo[2,1,5-de]quinolizine (1.43 g, 88% yield, 98% purity) as a light yellow solid.

F. Synthesis of 2-Bromo-4,4,7-trimethyl-3,4-dihydrodibenzo[b,j]imidazo[2,1,5-de]quinolizine

A mixture of 4,4,7-Trimethyl-3,4-dihydrodibenzo[b,ij]imidazo[2,1,5-de]quinolizine (500 mg, 1.75 mmol, 1 equiv) and N-bromosuccinimide (311 mg, 1.75 mmol, 1 equiv) in dichloromethane (11 mL) was stirred at room temperature for 2 hours. The reaction was diluted with water (20 mL) and dichloromethane (10 mL). The layers were separated and the aqueous were extracted with dichloromethane (3×20 mL). The combined organic layers were dried over sodium sulfate and concentrated under reduced pressure. The residue was purified by column chromatography to give 2-bromo-4,4,7-trimethyl-3,4-dihydrodibenzo[b,ij]imidazo[2,1,5-de]quinolizine (575 mg, 90% yield, 97% purity) as a light brown solid.

G. Synthesis of 2,4,4,7-Tetramethyl-3,4-dihydrodibenzo[b,ij]imidazo[2,1,5-de]quinolizine

A mixture of 2-bromo-4,4,7-trimethyl-3,4-dihydrodibenzo[b,ij]imidazo[2,1,5-de]quinolizine (265 mg, 0.73 mmol, 1 equiv), trimethylboroxine (0.6 mL, 4.4 mmol, 6 equiv) and potassium carbonate (608 mg, 4.4 mmol, 6 equiv) in a 10 to 1 mixture of 1,4-dioxane and water (7 mL) was sparged with nitrogen for 15 minutes. (Chloro(2dicyclo-hexylphosphino-2′,6′-dimethoxy-1,1′-biphenyl)[2-(2′-amino-1,1′-biphenyl)]palladium(II) (108 mg, 0.15 mmol, 0.2 equiv) and 2-dicyclohexylphosphino-2′,6′-dimethoxybiphenyl (62 mg, 0.15 mmol, 0.2 equiv) were added and the reaction was refluxed for 16 hours. After cooling to room temperature, the reaction was diluted with water (10 mL) and ethyl acetate (10 mL). The layers were separated and the aqueous were extracted with ethyl acetate (3×20 mL). The combined organic layers were dried over sodium sulfate and concentrated under reduced pressure. The residue was purified by column chromatography to give 2,4,4,7-Tetramethyl-3,4-dihydrodibenzo[b,ij]imidazo[2,1,5-de]quinolizine (100 mg, 46% yield, 95% purity) as a pale yellow solid.

›EXAMPLE 7: Synthesis of Compound 49 was carried out according to Scheme 7 below · 2 of 2

H. Synthesis of Compound 49

Compound 49 was synthesized in an analogous way to Compound 35, yielding 13 mg of yellow powder (15%).

›EXAMPLE 8: Synthesis of Compound 50 was carried out according to Scheme 8 below

A. Synthesis of 1-chlorophenanthridin-6-amine

A mixture of 3-chloro-2-iodoaniline (8.77 g, 34.6 mmol), CyJohnPhos (0.462 g, 1.319 mmol), and Pd(CH 3 CN) 2 Cl 2 (0.171 g, 0.659 mmol) was dissolved in dioxane (80 ml). Triethylamine (13.78 ml, 99 mmol) and 4,4,5,5-tetramethyl-1,3,2-dioxaborolane (10.04 ml, 69.2 mmol) were added to the solution in sequence via syringe. The reaction was reflux for 4 h. The reaction was cooled to room temperature and a solid mixture of 2-bromobenzonitrile (6 g, 33.0 mmol), S-Phos Pd G2 (0.475 g, 0.659 mmol), S-Phos (0.271 g, 0.659 mmol), and potassium carbonate (9.11 g, 65.9 mmol) was added to the reaction mixture followed by dioxane (20 ml) and water (20 ml) and the reaction was heated to 85° C. for 16 hours. The crude product was extracted with DCM and vacuumed down to yield an orange oil. This was dissolved in THE (80 mL) and sodium hydride (1.978 g, 49.4 mmol) was added at 0° C. and stirred for 20 min. The reaction was quenched with brine and extracted with DCM. Evaporation of the reaction mixture followed by trituration with ether yielded 1-chlorophenanthridin-6-amine as an off-white solid (52% yield).

B. Synthesis of 8-chloroimidazo[1,2-f]phenanthridine

1-chlorophenanthridin-6-amine (864 mg, 3.78 mmol), 2-chloroacetaldehyde (50 wt % in water, 1.02 mL, 7.56 mmol), and sodium bicarbonate (635 mg, 7.56 mmol) were combined in iPrOH and refluxed for 1 h. The mixture was cooled to room temperature and poured into water and filtered (99% yield).

C. Synthesis of 8-phenylimidazo[1,2-f]phenanthridine

A mixture of 8-chloroimidazo[1,2-f]phenanthridine (955 mg, 3.78 mmol), phenylboronic acid (829 mg, 6.80 mmol), S-Phos Pd G2 (109 mg, 0.151 mmol), S-Phos (62.1 mg, 0.151 mmol), and potassium carbonate (522 mg, 3.78 mmol) was vacuumed and back-filled with nitrogen several times. Dioxane (20 ml) and water (4 ml) were added and refluxed for 1 h. The crude product was extracted with DCM and brine and purified by column chromatography to yield product (99% yield).

D. Synthesis of 3-bromo-8-phenylimidazo[1,2-f]phenanthridine

8-phenylimidazo[1,2-f]phenanthridine (1.15 mg, 3.91 mmol) and NBS (0.765 g, 4.30 mmol) were combined in DMF and stirred at room temperature for 30 minutes, followed by quenching with water. The resultant solid was filtered and dried in vacuum, yielding 3-bromo-8-phenylimidazo[1,2-f]phenanthridine in 75% yield.

E. Synthesis of 3-(2-methylprop-1-en-1-yl)-8-phenylimidazo[1,2-f]phenanthridine

A mixture of 3-bromo-8-phenylimidazo[1,2-f]phenanthridine (980 mg, 2.63 mmol), SPhos Pd G2 (76 mg, 0.105 mmol), SPhos (43.1 mg, 0.105 mmol), and potassium carbonate (363 mg, 2.63 mmol) was vacuumed and back-filled with nitrogen several times. Toluene (15 ml), Water (3 ml), and 4,4,5,5-tetramethyl-2-(2-methylprop-1-en-1-yl)-1,3,2-dioxaborolane (1.077 ml, 5.25 mmol) were added and heated at reflux for 16 hours. The product was extracted with DCM and brine and purified by column chromatography to give 3-(2-methylprop-1-en-1-yl)-8-phenylimidazo[1,2-f]phenanthridine in 20% yield.

F. Synthesis of 4,4-dimethyl-7-phenyl-3,4-dihydrodibenzo[b,ij]imidazo[2,1,5-de]quinolizine

3-(2-methylprop-1-en-1-yl)-8-phenylimidazo[1,2-f]phenanthridine (160 mg, 0.459 mmol) was dissolved in DCM (10 ml) and aluminum trichloride (184 mg, 1.378 mmol) was added. The reaction was stirred for 40 min at room temperature. The mixture was quenched with KOH(aq)/brine and extracted several times with DCM. The product was purified by column chromatography to give 4,4-dimethyl-7-phenyl-3,4-dihydrodibenzo[b,ij]imidazo[2,1,5-de]quinolizine in 63% yield.

G. Synthesis of Compound 50

(3-phenyl-1H-pyrazole) 2 Ir(MeOH) 2 (OTf) from Example 4 (0.03 g, 0.043 mmol) and 4,4-dimethyl-7-phenyl-3,4-dihydrodibenzo[b,ij]imidazo[2,1,5-de]quinolizine (0.030 g, 0.087 mmol) were combined in 2-ethoxyethanol (0.5 ml), vacuum/backfilled quickly three times with nitrogen, then heated at reflux under nitrogen for 2 h. The product was purified by column chromatography to give Compound 50 in 56% yield.

›EXAMPLE 9: Synthesis of Compound 108 was carried out according to Scheme 8 below · 1 of 4

A. Synthesis of tert-Butyl (4-((triisopropylsilyl)oxy)phenyl)carbamate

Triisopropylchlorosilane (32 mL, 0.15 mol, 1.2 equiv) and triethylamine (21 mL, 0.15 mol, 1.2 equiv) were sequentially added to a solution of tert-butyl (4-hydroxyphenyl)carbamate (26.1 g, 0.125 mol, 1 equiv) in THF (200 mL). The reaction mixture was stirred for 16 hours at room temperature. The reaction was filtered and the solids were washed with THF (2×30 mL). The combined filtrates were concentrated under reduced pressure. The crude product was purified by column chromatography to give tert-Butyl (4-((triisopropylsilyl)oxy)phenyl)carbamate (39.66 g, 87% yield) as yellow oil.

B. Synthesis of 4-((Triisopropylsilyl)oxy)aniline

Trifluoroacetic acid (41.51 mL, 0.54 mol, 5 equiv) was added at room temperature to a solution of tert-Butyl (4-((triisopropylsilyl)oxy)phenyl)carbamate (39.66 g, 0.1085 mol, 1 equiv) in dichloromethane (400 mL). After stirring for 16 hours the solvent was removed under reduced pressure. The residue was azeotroped with toluene (3×50 mL). The crude product was purified over silica to give 4-((Triisopropylsilyl)oxy)aniline (25 g, 87% yield).

C. Synthesis of 2,6-Dibromo-4-((triisopropylsilyl)oxy)aniline

Bromine (8.2 mL, 0.16 mol, 2.5 equiv) was added dropwise at 0° C. to a solution of 4-((Triisopropylsilyl)oxy)aniline (17 g, 64.4 mmol, 1 equiv) in a 1:1 mixture of dichloromethane and methanol (60 mL). The reaction mixture was allowed to warm up to room temperature and stirred for 16 hours. The reaction mixture was diluted with dichloromethane (200 mL) and washed sequentially with 1M NaOH (2×100 mL) and saturated brine (2×100 mL). The organic layer was dried over sodium sulfate and concentrated under reduced pressure to give 2,6-Dibromo-4-((triisopropylsilyl)oxy)aniline (26.37 g, 97% yield) as a brown oil, which was used subsequently.

D. Synthesis of 4-Bromo-8-methoxy-2-((triisopropylsilyl)oxy)phenanthridin-6-amine

A mixture of 5-methoxy-2-(4,4,5,5-tetramethyl-1,3,2-dioxaborolan-2-yl)benzonitrile (16.14 g, 62.3 mmol, 1 equiv), 51(26.37 g, 62.3 mmol, 1 equiv) and potassium phosphate (43.04 g, 0.187 mol, 3 equiv) in a 4 to 1 mixture of toluene and water (500 mL) was sparged with nitrogen for 1 hour. trans-Pd(PPh 3 ) 2 Cl 2 (2.8 g, 3.11 mmol, 0.05 equiv) was added and the reaction mixture was refluxed for 20 hours. Additional 5-methoxy-2-(4,4,5,5-tetramethyl-1,3,2-dioxaborolan-2-yl)benzonitrile (2.2 g, 8.5 mmol, 0.14 equiv) and trans-Pd(PPh 3 ) 2 Cl 2 (0.3 g, 0.43 mmol, 0.0069 equiv) were added and the reaction mixture was refluxed for an additional 4 hours. The layers were separated and the organic layer was washed with hot water (2×200 mL). The organic layer was dried over sodium sulfate and concentrated under reduced pressure. The residue was purified by column chromatography to yield 4-bromo-8-methoxy-2-((triisopropylsilyl)oxy)phenanthridin-6-amine in 20% yield.

E. Synthesis of 5-Bromo-3-(2-chloroethyl)-11-methoxy-7-((triisopropylsilyl)oxy)imidazo[1,2-f]phenanthridine

A suspension of 4-bromo-8-methoxy-2-((triisopropylsilyl)oxy)phenanthridin-6-amine (5.95 g, 12.53 mmol, 1 equiv), p-toluenesulfonic acid monohydrate (175 mg) and fresh prepared 2 (6.67 g, 62.63 mmol, 5 equiv) in i-propanol (500 mL) was stirred at the room temperature for 2 hours. Sodium carbonate (3.25 g, 37.6 mmol, 3 equiv) and deionized water (12 ml) were added and the reaction mixture was refluxed for 16 hours. After cooling to room temperature, the volume of reaction mixture was reduced to ˜60 ml under reduced pressure. The mixture was diluted with ethyl acetate (300 mL) and washed with saturated brine (200 mL). The organic layer was dried over sodium sulfate and concentrated under reduced pressure. The crude product was purified by column chromatography to give 5-bromo-3-(2-chloroethyl)-11-methoxy-7-((triisopropylsilyl)oxy)imidazo[1,2-f]phenanthridine (5.53 g, 79% yield).

F. Synthesis of 10-Methoxy-6-((triisopropylsilyl)oxy)-3,4-dihydrodibenzo[b,j]imidazo[2,1,5-de]quinolizine

A solution of 5-bromo-3-(2-chloroethyl)-11-methoxy-7-((triisopropylsilyl)oxy)imidazo[1,2-f]phenanthridine (5.53 g, 9.84 mmol, 1.0 equiv) in dry THF (300 mL) was sparged with nitrogen for 30 minutes. After cooling to 0° C., 2M isopropylmagnesium chloride in THF (7.4 mL, 14.76 mmol, 1.5 equiv) was added dropwise via syringe. The reaction mixture was warmed to the room temperature and stirred for 16 hours. The reaction was quenched with water (10 mL) and the THF was removed under reduced pressure. The residue was extracted with dichloromethane (500 mL). The organic layer was washed with water (2×200 mL), dried over sodium sulfate and concentrated under reduced pressure. The crude product was purified by column chromatography to give 10-methoxy-6-((triisopropylsilyl)oxy)-3,4-dihydrodibenzo[b,ij]imidazo[2,1,5-de]quinolizine (3 g, 68% yield).

G. Synthesis of 10-Methoxy-3,4-dihydrodibenzo[b,ij]imidazo[2,1,5-de]quinolizin-6-ol

Tetrabutylammonium fluoride trihydrate in THF (30 mL) was added dropwise to a solution of 10-methoxy-6-((triisopropylsilyl)oxy)-3,4-dihydrodibenzo[b,ij]imidazo[2,1,5-de]quinolizine (3 g, 6.72 mmol, 1 equiv) in THE (100 mL). After stirring at room temperature for 16 hours, the solvent was removed under reduced pressure and the residue was extracted with dichloromethane. (80 mL). The organic layer was washed with saturated brine (2×100 mL). Upon washing with saturated brine, a large precipitate started to form in the organic layer. The precipitation was filtered and washed with heptanes (2×10 mL) to give pure 10-methoxy-3,4-dihydrodibenzo[b,ij]imidazo[2,1,5-de]quinolizin-6-ol (1.83 g, 94% yield).

H. Synthesis of 10-Methoxy-3,4-dihydrodibenzo[b,ij]imidazo[2,1,5-de]quinolizin-6-yl trifluoromethanesulfonate

Trifluoroacetic anhydride (1.14 mL, 6.77 mmol, 1.1 equiv) and pyridine (0.744 mL, 9.24 mmol, 1.5 equiv) were sequentially added at 0° C. to a mixture of 10-methoxy-3,4-dihydrodibenzo[b,ij]imidazo[2,1,5-de]quinolizin-6-ol (1.79 g, 6.16 mmol, 1 equiv) in dichloromethane (100 mL). After stirring for 15 minutes, the reaction was warm to room temperature and stirred for 6 hours. The reaction mixture was diluted with dichloromethane (200 mL) and washed with water (3×100 mL). The organic layer was dried over sodium sulfate and solvent was removed under reduced pressure. The residue was triturated with a 10 to 1 mixture of heptanes and dichloromethane (10 mL) to give 10-methoxy-3,4-dihydrodibenzo[b,ij]imidazo[2,1,5-de]quinolizin-6-yl trifluoromethanesulfonate (2.17 g, 83% yield).

›EXAMPLE 9: Synthesis of Compound 108 was carried out according to Scheme 8 below · 2 of 4

I. Synthesis of 10-Methoxy-6-phenyl-3,4-dihydrodibenzo[b,ij]imidazo[2,1,5-de]quinolizine

A mixture of 10-methoxy-3,4-dihydrodibenzo[b,ij]imidazo[2,1,5-de]quinolizin-6-yl trifluoromethanesulfonate (0.65 g, 1.54 mmol, 1 equiv), phenylboronic acid (0.188 g, 1.54 mmol, 1 equiv) and potassium phosphate (1.06 g, 4.62 mmol, 3 equiv) in a 3:1:1 mixture of toluene:1,4-dioxane:water (500 mL) was sparged with nitrogen for 1 hour. Trans-Pd(PPh 3 ) 2 Cl 2 (54 mg, 0.077 mmol, 0.05 equiv) was added and the reaction mixture was refluxed for 16 hours. The reaction mixture was diluted with dichloromethane (200 mL). The organic layer was washed with warm water (2×100 mL), dried over sodium sulfate and concentrated under reduced pressure to give 10-methoxy-6-phenyl-3,4-dihydrodibenzo[b,ij]imidazo[2,1,5-de]quinolizine (0.527 g, 97% yield).

J. Synthesis of 6-Phenyl-3,4-dihydrodibenzo[b,ij]imidazo[2,1,5-de]quinolizin-10-ol

1M Boron tribromide in dichloromethane (7.5 mL, 7.5 mmol, 5 equiv) was added dropwise at −78° C. to a solution of 10-methoxy-6-phenyl-3,4-dihydrodibenzo[b,ij]imidazo[2,1,5-de]quinolizine (0.527 g, 1.5 mmol, 1 equiv) in dichloromethane (100 mL). The reaction warmed to the room temperature and stirred for 16 hours. The reaction mixture was carefully poured in ice water (150 mL) and the resulting solid was filtered and washed sequentially with water (30 ml) and heptanes (10 mL) to give 6-phenyl-3,4-dihydrodibenzo[b,ij]imidazo[2,1,5-de]quinolizin-10-ol (0.47 g, 93% yield).

K. Synthesis of 10-((9-(4-Isopropylpyridin-2-yl)-9H-carbazol-2-yl)oxy)-6-phenyl-3,4-dihydro-dibenzo[b,ij]imidazo[2,1,5-de]quinolizine

A mixture of 2-Bromo-9-(4-isopropylpyridin-2-yl)-9H-carbazole (0.528 g, 1.446 mmol, 1 equiv), 6-phenyl-3,4-dihydrodibenzo[b,ij]imidazo[2,1,5-de]quinolizin-10-ol (0.486 g, 1.446 mmol, 1 equiv), potassium phosphate (1.67 g, 7.23 mmol, 5 equiv), copper (I) iodide (0.138 g, 0.723 mmol, 0.5 equiv), and picolinic acid (0.445 g, 3.62 mmol, 2.5 equiv) in DMSO (50 mL) was heated at 150° C. for 4.5 hours. After cooling to room temperature, the reaction mixture was poured into water (300 mL) and extracted with ethyl acetate (4×100 mL). The combined organic layers were dried over sodium sulfate and concentrated under reduced pressure. The crude product was purified by column chromatography to give 10-((9-(4-isopropylpyridin-2-yl)-9H-carbazol-2-yl)oxy)-6-phenyl-3,4-dihydro-dibenzo[b,ij]imidazo[2,1,5-de]quinolizine as a tan solid (0.55 g, 61% yield).

L. Synthesis of Compound 108

A solution of 10-((9-(4-isopropylpyridin-2-yl)-9H-carbazol-2-yl)oxy)-6-phenyl-3,4-dihydro-dibenzo[b,ij]imidazo[2,1,5-de]quinolizine (350 mg, 0.564 mmol, 1 equiv) glacial acetic acid (60 mL) was sparged with argon for 40 minutes. K 2 PtCl 4 (234 mg, 0.564 mmol, 1 equiv) was added and the reaction mixture was refluxed for 16 hours. After cooling to room temperature, the yellow-greenish precipitate was filtered and washed sequentially with water (4×15 mL) and heptanes (2×10 mL) and dried under vacuum at 20° C. for 18 hours. The crude product was dissolved in dichloromethane (500 mL) and passed through a plug of silica gel 10 g) to remove residual K 2 PtCl 4 . The solvent was removed under reduced pressure. The residue was triturated with a 1 to 1 mixture of dichloromethane and heptanes (20 mL), filtered and washed with dichloromethane (2×3 mL) to give Compound 108 (40 mg, yield 8.7% yield, 83.2%).

DISCUSSION: The general structure of one embodiment of the metal-coordinated imidazophenanthridine ligand is shown below. The bonds of interest in the computational study are the four carbon-nitrogen (C—N) single bonds. They are labeled as C—Ni, C—N2, C—N p h for the nitrogen that has three single C—N bonds, and C-Nm for the nitrogen that is coordinated to the metal.

Geometry optimizations of all complexes and ligands were performed in the Gaussian 09 software package using the hybrid B3LYP functional with the CEP-31 g effective core potential basis set. All results use this method unless otherwise stated in the results and discussion.

Bond strengths were calculated by breaking a bond to form a diradical species on the imidazophenanthridine ligand. The bond-broken diradical species was calculated as a triplet state as this is normally lower in energy than a diradical singlet and therefore the more likely product formed in a bond breaking event. Calculations were performed at the B3LYP/6-31 g(d) level and thermodynamics reported for the ground state singlet→bond broken triplet and a lowest energy triplet (excited state)→bond broken triplet.

Calculated TD-DFT values for the lowest triplet excited state (Ti) were also performed at the B3LYP/CEP-31 g level of theory but included the CPCM continuum solvent field using THF as the solvent which has been shown to better match experimental results.

Bond strength calculations were performed on the following compounds:

Calculated bond strengths are shown in Table 1.

Table 1 shows calculated bond strengths for a series of comparative examples and invention Compound 1. Where two numbers are seen in the same cell, the top number represents the thermodynamic difference between the excited state triplet→bond broken triplet. The lower number represents the ground state singlet→bond broken triplet. If there is only one number in the cell, it represents the triplet→triplet bond strength (T→T). For all comparative compounds 1-4, the C—N 1 bond is shown to be the weakest bond. Bond strengths are found to be weaker in the excited triplet state compared to the ground state singlet. This is due to the complex having the energy of the excited state available as the starting point to the, generally, higher energy bond broken state. In some cases, as shown for comparative compound 2 and 3, the bond broken state is lower in energy than the starting triplet state. Therefore a bond breaking event may be considered thermodynamically favorable or exothermic. It is found that when aryl substitutions are added at the C—N 1 bond carbon atom, the bond strength decreases, as seen comparing comparative compound 1 to comparative compounds 2 and 3. This effect may be due to resonance stabilization of the radical species at the bond breaking site which is stabilized by the aryl substitution.

›EXAMPLE 9: Synthesis of Compound 108 was carried out according to Scheme 8 below · 3 of 4

Stabilization of the weak C—N 1 bond can be achieved by a linking substitution that links the C—N 1 carbon to the carbon on the adjacent fused aryl ring as depicted by “A” in Formula (1a). This linking group is preferably comprised of elements that provide the proper structural geometry to form a bridge across the two carbons of the phenanthridine ring system, providing the necessary rigidity to stabilize the C—N 1 bond while not lowering the triplet energy of the resulting ligand and complex.

The effect of the stabilizing linker is shown in Table 1 for invention Compound 1. Here the triplet C—N 1 bond strength has greatly improved from 11.81 kcal/mol, for the analogous comparative Compound 1, to 35.38 kcal/mol for the invention compound, an increase in theromodynmic bond strength of >20 kcal/mol. The two carbon linking substituent prevents the ligand from being able to obtain the appropriate relaxed geometry of a CN 1 bond broken state. Importantly, the triplet energy is not affected by this substitution as both invention Compound 1 and Comparative Compound 1 both have identical triplet energies of 468 nm by calculation.

The minimized non bond-broken and bond-broken geometries of comparative example 1 are shown in FIGS. 3 a and 3 b . It can be seen that the bond broken geometry relaxes the ring strain of the fused ring system of the imidazophenanthridine ligand. The tethering substitution, as shown for invention Compound 1, inhibits the relaxed bond broken geometry, thereby increasing the thermodynamic bond strength of the C—N 1 bond.

Further experimental evidence of the weakness of the C—N 1 bond is shown by matrix assisted laser desorption ionization mass spectroscopy (MALDI-MS). MALDI-MS can be used to probe weaknesses in bonds in the excited states of molecules. It is believed that as a measure of photochemical stability, MALDI-MS can simulate some of the conditions found inside an OLED device, where both charged and excited states are present. FIG. 3 shows the MALDI-MS taken in the negative mode for comparative compound 3. The peak for the parent ion is identified at 1529 amu. However the highest intensity peak is found at 1275 amu. This mass corresponds to a fragment of comparative compound 3 where the imidazole ring has lost the mass of two carbons and the terphenyl substitution. The structure of proposed fragment is shown in FIG. 3 . The isotopic pattern confirms this fragment contains iridium and is consistent with the chemical formula of the proposed fragment. Further fragments are identified for ligand loss at 1083 amu and imidazole ring decomposition for two ligands at 1020 amu, as shown in FIG. 4 . The data suggests that the formation of the major fragment requires the rupture of the C—N 1 bond that is predicted to be a weak bond by calculation.

Photophysical Properties of the Compounds of the Invention

The measured photophysical properties of the invention compounds are reported in the Table 2 below. Complexes were measured at 77K and at room temperature in 2-methyl tetrahydrofuran solvent at highly dilute concentrations. Photoluminescent quantum yields (PLQY, (FP) were measured at 1 wt % in polymethylmethacrylate (PMMA) solid state matrix or 0.4 wt % polystyrene (PS) solid state matrix using a Hamamatsu C9920 system equipped with a xenon lamp, integrating sphere and a model C10027 photonic multi-channel analyzer. PL transient measurements (τ) were carried out by time correlated single photon counting method using a Horiba Jobin Yvon Fluorolog-3 integrated with an IBH datastation hub using a 335 nm nanoLED as the excitation source.

Compound 35 was measured to have deep blue emission, with a highest energy peak at 77 K of 451 nm, however, the PLQY for the complex is only 5%. Compound 49 demonstrates how modifications to the ligand can be used to improve PLQY. The methyl substitution on the imidazole ring has been found to improve the PLQY of non-ethyl bridged phenanthridine imidazole analogues. In addition, methyl substitution on the exterior phenyl ring is shown by calculation to affect the ligand bite angle due to the steric influence of the methyl substituent and the proton on the adjacent aryl ring. This steric effect pushes the phenanthridine imidazole polycyclic ring system geometry closer to the geometry of a non-bridged ligand where the coordinating sites can more closely connect to the metal. This subtle change in the geometry of the ligand allows for a stronger interaction between the metal and neutrally coordinated nitrogen, improving the metal-nitrogen bond strength. It is believed that a stronger metal-nitrogen bond strength can improve the emissivity of a complex by reducing metal-nitrogen bond breaking non-radiative decay. Therefore both methyl substitutions might be responsible for enhancing the PLQY of Compound 49 compared to Compound 35. Compound 49 was measured to have a PLQY of 62% in PMMA matrix, which is very close to the PLQY value of the non-bridged analog, Comparative Compound 6, which is measured to have a PLQY of 68%. In addition, Compound 49 is measured to have a much shorter excited state lifetime at 77 K of 2.9 microseconds, compared to an excited state lifetime of 5.1 microseconds for Compound 35. This further demonstrates that the methyl substituents improved the radiative properties of Compound 49.

Heteroleptic examples with phenylpyrazole ligands (ppz), Compound 48 and Compound 50, are measured to have deep blue emission, but low PLQY. However, the non-bridged reference compound, Comparative Compound 8, is also measured to have a low PLQY of 14%. It is believed that the low efficiency may be due to the weak metal-nitrogen bond of the pyrazole ligand. To further support this assumption, tris Ir(ppz) 3 has been shown in the literature to be non-emissive in room temperature solution, but highly emissive at 77 K. The non emissivity at room temperature is attributed to a weak metal nitrogen bond.

Platinum complexes with bridged phenanthridine imidazole ligands are also found to be highly emissive with deep blue color. Compound 105 and Comparative Compound 7 are both measured to have high PLQY values of 85% and 87%, respectively, in the optically inert polystyrene matrix. Platinum complexes may not require the ligand modifications for improving PLQY as described for the iridium analogue, Compound 49, due to a relatively stronger platinum-nitrogen bond strength compared to iridium.

›EXAMPLE 9: Synthesis of Compound 108 was carried out according to Scheme 8 below · 4 of 4

It will be appreciated by those skilled in the art that changes could be made to the exemplary embodiments shown and described above without departing from the broad inventive concept thereof. It is understood, therefore, that this invention is not limited to the exemplary embodiments shown and described, but it is intended to cover modifications within the spirit and scope of the present invention as defined by the claims. For example, specific features of the exemplary embodiments may or may not be part of the claimed invention and features of the disclosed embodiments may be combined. Unless specifically set forth herein, the terms “a”, “an” and “the” are not limited to one element but instead should be read as meaning “at least one”.

It is to be understood that at least some of the figures and descriptions of the invention have been simplified to focus on elements that are relevant for a clear understanding of the invention, while eliminating, for purposes of clarity, other elements that those of ordinary skill in the art will appreciate may also comprise a portion of the invention. However, because such elements are well known in the art, and because they do not necessarily facilitate a better understanding of the invention, a description of such elements is not provided herein.

Further, to the extent that any methods of the present invention do not rely on the particular order of steps set forth herein, the particular order of the steps should not be construed as limitation on the claims. The claims directed to such methods should not be limited to the performance of their steps in the order written, and one skilled in the art can readily appreciate that the steps may be varied and still remain within the spirit and scope of the present invention.

All references, including publications, patent applications, and patents, cited herein are hereby incorporated by reference to the same extent as if each reference were individually and specifically indicated to be incorporated by reference and were set forth in its entirety herein.

›Tables in the description — 3
L ALinker AR 1aR 1bR 1cR 1dR 1eR 1fR 1g
L A 1 L A 2 L A 3 L A 4 L A 5
H Me H H HH H Me H HH H H Me HH H H H MeH H H H HH H H H HH H H H H
L A 6HHHHMeHH
L A 7CD 3HHHHHH
L A 8HCD 3HHHHH
L A 9HHCD 3HHHH
L A 10HHHCD 3HHH
L A 11HHHHCD 3HH
L A 12i PrHHHHHH
L A 13Hi PrHHHHH
L A 14HHi PrHHHH
L A 15HHHi PrHHH
L A 16HHHHi PrHH
L A 17PhHHHHHH
L A 18HPhHHHHH
L A 19HHPhHHHH
L A 20HHHPhHHH
L A 21HHHHPhHH
L A 22MeMeHHHHH
L A 23MeHMeHHHH
L A 24MeHHMeHHH
L A 25MeHHHMeHH
L A 26MeCD 3HHHHH
L A 27MeHCD 3HHHH
L A 28MeHHCD 3HHH
L A 29MeHHHCD 3HH
L A 30Mei PrHHHHH
L A 31MeHi PrHHHH
L A 32MeHHi PrHHH
L A 33MeHHHi PrHH
L A 34MePhHHHHH
L A 35MeHPhHHHH
L A 36MeHHPhHHH
L A 37MeHHHPhHH
L A 38CD 3MeHHHHH
L A 39CD 3HMeHHHH
L A 40CD 3HHMeHHH
L A 41CD 3HHHMeHH
L A 42CD 3CD 3HHHHH
L A 43CD 3HCD 3HHHH
L A 44CD 3HHCD 3HHH
L A 45CD 3HHHCD 3HH
L A 46CD 3i PrHHHHH
L A 47CD 3Hi PrHHHH
L A 48CD 3HHi PrHHH
L A 49CD 3HHHi PrHH
L A 50CD 3PhHHHHH
L A 51CD 3HPhHHHH
L A 52CD 3HHPhHHH
L A 53CD 3HHHPhHH
L A 54i PrMeHHHHH
L A 55i PrHMeHHHH
L A 56i PrHHMeHHH
L A 57i PrHHHMeHH
L A 58i PrCD 3HHHHH
L A 59i PrHCD 3HHHH
L A 60i PrHHCD 3HHH
L A 61i PrHHHCD 3HH
L A 62i Pri PrHHHHH
L A 63i PrHi PrHHHH
L A 64i PrHHi PrHHH
L A 65i PrHHHi PrHH
L A 66i PrPhHHHHH
L A 67i PrHPhHHHH
L A 68i PrHHPhHHH
L A 69i PrHHHPhHH
L A 70PhMeHHHHH
L A 71PhHMeHHHH
L A 72PhHHMeHHH
L A 73PhHHHMeHH
L A 74PhCD 3HHHHH
L A 75PhHCD 3HHHH
L A 76PhHHCD 3HHH
L A 77PhHHHCD 3HH
L A 78Phi PrHHHHH
L A 79PhHi PrHHHH
L A 80PhHHi PrHHH
L A 81PhHHHi PrHH
L A 82PhPhHHHHH
L A 83PhHPhHHHH
L A 84PhHHPhHHH
L A 85PhHHHPhHH
L A 86HMeMeHHHH
L A 87HMeHMeHHH
L A 88HMeHHMeHH
L A 89HMeCD 3HHHH
L A 90HMeHCD 3HHH
L A 91HMeHHCD3HH
L A 92HMei PrHHHH
L A 93HMeHi PrHHH
L A 94HMeHHi PrHH
L A 95HMePhHHHH
L A 96HMeHPhHHH
L A 97HMeHHPhHH
L A 98HCD 3MeHHHH
L A 99HCD 3HMeHHH
L A 100HCD 3HHMeHH
L A 101HCD 3CD 3HHHH
L A 102HCD 3HCD 3HHH
L A 103
HCD 3HHCD 3HH
L A 104HCD 3i PrHHHH
L A 105HCD 3Hi PrHHH
L A 106HCD 3HHi PrHH
L A 107HCD 3PhHHHH
L A 108HCD 3HPhHHH
L A 109HCD 3HHPhHH
L A 110Hi PrMeHHHH
L A 111Hi PrHMeHHH
L A 112Hi PrHHMeHH
L A 113Hi PrCD 3HHHH
L A 114Hi PrHCD 3HHH
L A 115Hi PrHHCD 3HH
L A 116Hi Pri PrHHHH
L A 117Hi PrHi PrHHH
L A 118Hi PrHHi PrHH
L A 119Hi PrPhHHHH
L A 120Hi PrHPhHHH
L A 121Hi PrHHPhHH
L A 122HPhMeHHHH
L A 123HPhHMeHHH
L A 124HPhHHMeHH
L A 125HPhCD 3HHHH
L A 126HPhHCD 3HHH
L A 127HPhHHCD 3HH
L A 128HPhi PrHHHH
L A 129HPhHi PrHHH
L A 130HPhHHi PrHH
L A 131HPhPhHHHH
L A 132HPhHPhHHH
L A 133HPhHHPhHH
L A 134HHMeMeHHH
L A 135HHCD 3MeHHH
L A 136HHi PrMeHHH
L A 137HHPhMeHHH
L A 138HHMeCD 3HHH
L A 139HHCD 3CD 3HHH
L A 140HHi PrCD 3HHH
L A 141HHPhCD 3HHH
L A 142HHMeiPrHHH
L A 143HHCD 3iPrHHH
L A 144HHi Pri PrHHH
L A 145HHPhi PrHHH
L A 146HHMePhHHH
L A 147HHCD 3PhHHH
L A 148HHi PrPhHHH
L A 149HHPhPhHHH
L A 150HHMeHMeHH
L A 151HHCD 3HMeHH
L A 152HHi PrHMeHH
L A 153HHPhHMeHH
L A 154HHMeHCD 3HH
L A 155HHCD 3HCD 3HH
L A 156HHi PrHCD 3HH
L A 157HHPhHCD 3HH
L A 158 L A 159 L A 160 L A 161 L A 162
H H H H HH H H H HMe CD 3 i Pr Ph MeH H H H Hi Pr i Pr i Pr i Pr PhH H H H HH H H H H
L A 163HHCD 3HPhHH
L A 164HHi PrHPhHH
L A 165HHPhHPhHH
L A 166MeMeHMeHHH
L A 167HMeMeMeHHH
L A 168CD 3MeHMeHHH
L A 169HMeCD 3MeHHH
L A 170i PrMeHMeHHH
L A 171HMei PrMeHHH
L A 172PhMeHMeHHH
L A 173HMePhMeHHH
L A 174MeCD 3HCD 3HHH
L A 175HCD 3MeCD 3HHH
L A 176CD 3CD 3HCD 3HHH
L A 177HCD 3CD3CD 3HHH
L A 178i PrCD 3HCD 3HHH
L A 179HCD 3i PrCD 3HHH
L A 180PhCD 3HCD 3HHH
L A 181HCD 3PhCD 3HHH
L A 182Mei PrHi PrHHH
L A 183Hi PrMei PrHHH
L A 184CD 3i PrHi PrHHH
L A 185Hi PrCD 3i PrHHH
L A 186i Pri PrHi PrHHH
L A 187Hi PriPri PrHHH
L A 188Phi PrHi PrHHH
L A 189Hi PrPhi PrHHH
L A 190MePhHPhHHH
L A 191HPhMePhHHH
L A 192CD 3PhHPhHHH
L A 193HPhCD 3PhHHH
L A 194i PrPhHPhHHH
L A 195HPhiPrPhHHH
L A 196PhPhHPhHHH
L A 197HPhPhPhHHH
L A 198 L A 199 L A 200 L A 201 L A 202
H Me H H HH H Me H HH H H Me HH H H H MeH H H H HH H H H HH H H H H
L A 203HHHHMeHH
L A 204CD 3HHHHHH
L A 205HCD 3HHHHH
L A 206HHCD 3HHHH
L A 207HHHCD 3HHH
L A 208HHHHCD 3HH
L A 209i PrHHHHHH
L A 210Hi PrHHHHH
L A 211HHi PrHHHH
L A 212HHHi PrHHH
L A 213 L A 214 L A 215 L A 216 L A 217
H Ph H H HH H Ph H HH H H Ph HH H H H Phi Pr H H H HH H H H HH H H H H
L A 218HHHHPhHH
L A 219MeMeHHHHH
L A 220MeHMeHHHH
L A 221MeHHMeHHH
L A 222MeHHHMeHH
L A 223MeCD 3HHHHH
L A 224MeHCD 3HHHH
L A 225MeHHCD 3HHH
L A 226MeHHHCD 3HH
L A 227Mei PrHHHHH
L A 228MeHi PrHHHH
L A 229MeHHi PrHHH
L A 230MeHHHi PrHH
L A 231MePhHHHHH
L A 232MeHPhHHHH
L A 233MeHHPhHHH
L A 234MeHHHPhHH
L A 235CD 3MeHHHHH
L A 236CD 3HMeHHHH
L A 237CD 3HHMeHHH
L A 238CD 3HHHMeHH
L A 239CD 3CD 3HHHHH
L A 240CD 3HCD 3HHHH
L A 241CD 3HHCD 3HHH
L A 242CD 3HHHCD 3HH
L A 243CD 3i PrHHHHH
L A 244CD 3Hi PrHHHH
L A 245CD 3HHi PrHHH
L A 246CD 3HHHi PrHH
L A 247CD 3PhHHHHH
L A 248CD 3HPhHHHH
L A 249CD 3HHPhHHH
L A 250CD 3HHHPhHH
L A 251i PrMeHHHHH
L A 252i PrHMeHHHH
L A 253i PrHHMeHHH
L A 254i PrHHHMeHH
L A 255i PrCD 3HHHHH
L A 256i PrHCD 3HHHH
L A 257i PrHHCD 3HHH
L A 258i PrHHHCD 3HH
L A 259i Pri PrHHHHH
L A 260i PrHi PrHHHH
L A 261i PrHHi PrHHH
L A 262i PrHHHi PrHH
L A 263i PrPhHHHHH
L A 264i PrHPhHHHH
L A 265i PrHHPhHHH
L A 266i PrHHHPhHH
L A 267PhMeHHHHH
L A 268 L A 269 L A 270 L A 271 L A 272
Ph Ph Ph Ph PhH H H CD 3 HMe H H H CD 3H Me H H HH H Me H HH H H H HH H H H H
L A 273PhHHCD 3HHH
L A 274PhHHHCD 3HH
L A 275Phi PrHHHHH
L A 276PhHi PrHHHH
L A 277PhHHi PrHHH
L A 278PhHHHi PrHH
L A 279PhPhHHHHH
L A 280PhHPhHHHH
L A 281PhHHPhHHH
L A 282PhHHHPhHH
L A 283HMeMeHHHH
L A 284HMeHMeHHH
L A 285HMeHHMeHH
L A 286HMeCD 3HHHH
L A 287HMeHCD 3HHH
L A 288HMeHHCD 3HH
L A 289HMei PrHHHH
L A 290HMeHi PrHHH
L A 291HMeHHi PrHH
L A 292HMePhHHHH
L A 293HMeHPhHHH
L A 294HMeHHPhHH
L A 295HCD 3MeHHHH
L A 296HCD 3HMeHHH
L A 297HCD 3HHMeHH
L A 298HCD 3CD3HHHH
L A 299HCD 3HCD3HHH
L A 300HCD 3HHCD3HH
L A 301HCD 3i PrHHHH
L A 302HCD 3Hi PrHHH
L A 303HCD 3HHi PrHH
L A 304HCD 3PhHHHH
L A 305HCD 3HPhHHH
L A 306HCD 3HHPhHH
L A 307Hi PrMeHHHH
L A 308Hi PrHMeHHH
L A 309Hi PrHHMeHH
L A 310Hi PrCD 3HHHH
L A 311Hi PrHCD 3HHH
L A 312Hi PrHHCD 3HH
L A 313Hi Pri PrHHHH
L A 314Hi PrHi PrHHH
L A 315Hi PrHHi PrHH
L A 316Hi PrPhHHHH
L A 317Hi PrHPhHHH
L A 318Hi PrHHPhHH
L A 319HPhMeHHHH
L A 320HPhHMeHHH
L A 321HPhHHMeHH
L A 322HPhCD 3HHHH
L A 323 L A 324 L A 325 L A 326 L A 327
H H H H HPh Ph Ph Ph PhH H i Pr H HCD 3 H H i Pr HH CD 3 H H i PrH H H H HH H H H H
L A 328HPhPhHHHH
L A 329HPhHPhHHH
L A 330HPhHHPhHH
L A 331HHMeMeHHH
L A 332HHCD 3MeHHH
L A 333HHi PrMeHHH
L A 334HHPhMeHHH
L A 335HHMeCD 3HHH
L A 336HHCD 3CD 3HHH
L A 337HHi PrCD 3HHH
L A 338HHPhCD 3HHH
L A 339HHMei PrHHH
L A 340HHCD 3i PrHHH
L A 341HHi Pri PrHHH
L A 342HHPhi PrHHH
L A 343HHMePhHHH
L A 344HHCD 3PhHHH
L A 345HHi PrPhHHH
L A 346HHPhPhHHH
L A 347HHMeHMeHH
L A 348HHCD 3HMeHH
L A 349HHi PrHMeHH
L A 350HHPhHMeHH
L A 351HHMeHCD 3HH
L A 352HHCD 3HCD 3HH
L A 353HHi PrHCD 3HH
L A 354HHPhHCD 3HH
L A 355HHMeHi PrHH
L A 356HHCD 3Hi PrHH
L A 357HHi PrHi PrHH
L A 358HHPhHi PrHH
L A 359HHMeHPhHH
L A 360HHCD 3HPhHH
L A 361HHi PrHPhHH
L A 362HHPhHPhHH
L A 363MeMeHMeHHH
L A 364HMeMeMeHHH
L A 365CD 3MeHMeHHH
L A 366HMeCD 3MeHHH
L A 367i PrMeHMeHHH
L A 368HMei PrMeHHH
L A 369PhMeHMeHHH
L A 370HMePhMeHHH
L A 371MeCD 3HCD 3HHH
L A 372HCD 3MeCD 3HHH
L A 373CD 3CD 3HCD 3HHH
L A 374HCD 3CD3CD 3HHH
L A 375i PrCD 3HCD 3HHH
L A 376HCD 3i PrCD 3HHH
L A 377PhCD 3HCD 3HHH
L A 378 L A 379 L A 380 L A 381 L A 382
H Me H CD 3 HCD 3 i Pr i Pr i Pr i PrPh H Me H CD 3CD 3 i Pr i Pr i Pr i PrH H H H HH H H H HH H H H H
L A 383i Pri PrHi PrHHH
L A 384Hi PriPri PrHHH
L A 385Phi PrHi PrHHH
L A 386Hi PrPhi PrHHH
L A 387MePhHPhHHH
L A 388HPhMePhHHH
L A 389CD 3PhHPhHHH
L A 390HPhCD 3PhHHH
L A 391i PrPhHPhHHH
L A 392HPhi PrPhHHH
L A 393PhPhHPhHHH
L A 394HPhPhPhHHH
L A 395 L A 396 L A 397 L A 398 L A 399 L A 400 L A 401
H Me H H H H CD 3H H Me H H H HH H H Me H H HH H H H Me H HH H H H H Me HH H H H H H HH H H H H H H
L A 402HCD 3HHHHH
L A 403HHCD 3HHHH
L A 404HHHCD 3HHH
L A 405HHHHCD 3HH
L A 406i PrHHHHHH
L A 407Hi PrHHHHH
L A 408HHi PrHHHH
L A 409HHHi PrHHH
L A 410HHHHi PrHH
L A 411PhHHHHHH
L A 412HPhHHHHH
L A 413HHPhHHHH
L A 414HHHPhHHH
L A 415HHHHPhHH
L A 416MeMeHHHHH
L A 417MeHMeHHHH
L A 418MeHHMeHHH
L A 419MeHHHMeHH
L A 420MeCD 3HHHHH
L A 421MeHCD 3HHHH
L A 422MeHHCD 3HHH
L A 423MeHHHCD 3HH
L A 424Mei PrHHHHH
L A 425MeHi PrHHHH
L A 426MeHHi PrHHH
L A 427MeHHHi PrHH
L A 428MePhHHHHH
L A 429MeHPhHHHH
L A 430MeHHPhHHH
L A 431MeHHHPhHH
L A 432CD 3MeHHHHH
L A 433 L A 434 L A 435 L A 436 L A 437 L A 438 L A 439
CD 3 CD 3 CD 3 CD 3 CD 3 CD 3 CD 3H H H CD 3 H H HMe H H H CD 3 H HH Me H H H CD 3 HH H Me H H H CD 3H H H H H H HH H H H H H H
L A 440CD 3i PrHHHHH
L A 441CD 3Hi PrHHHH
L A 442CD 3HHi PrHHH
L A 443CD 3HHHi PrHH
L A 444CD 3PhHHHHH
L A 445CD 3HPhHHHH
L A 446CD 3HHPhHHH
L A 447CD 3HHHPhHH
L A 448i PrMeHHHHH
L A 449i PrHMeHHHH
L A 450i PrHHMeHHH
L A 451i PrHHHMeHH
L A 452i PrCD 3HHHHH
L A 453i PrHCD 3HHHH
L A 454i PrHHCD 3HHH
L A 455i PrHHHCD 3HH
L A 456i Pri PrHHHHH
L A 457i PrHi PrHHHH
L A 458i PrHHi PrHHH
L A 459i PrHHHi PrHH
L A 460i PrPhHHHHH
L A 461i PrHPhHHHH
L A 462i PrHHPhHHH
L A 463i PrHHHPhHH
L A 464PhMeHHHHH
L A 465PhHMeHHHH
L A 466PhHHMeHHH
L A 467PhHHHMeHH
L A 468PhCD 3HHHHH
L A 469PhHCD 3HHHH
L A 470PhHHCD 3HHH
L A 471PhHHHCD 3HH
L A 472Phi PrHHHHH
L A 473PhHi PrHHHH
L A 474PhHHi PrHHH
L A 475PhHHHi PrHH
L A 476PhPhHHHHH
L A 477PhHPhHHHH
L A 478PhHHPhHHH
L A 479PhHHHPhHH
L A 480HMeMeHHHH
L A 481HMeHMeHHH
L A 482HMeHHMeHH
L A 483HMeCD 3HHHH
L A 484HMeHCD 3HHH
L A 485HMeHHCD 3HH
L A 486HMei PrHHHH
L A 487HMeHi PrHHH
L A 488 L A 489 L A 490 L A 491 L A 492 L A 493 L A 494
H H H H H H HMe Me Me Me CD 3 CD 3 CD 3H Ph H H Me H HH H Ph H H Me Hi Pr H H Ph H H MeH H H H H H HH H H H H H H
L A 495HCD 3CD 3HHHH
L A 496HCD 3HCD 3HHH
L A 497HCD 3HHCD 3HH
L A 498HCD 3i PrHHHH
L A 499HCD 3Hi PrHHH
L A 500HCD 3HHi PrHH
L A 501HCD 3PhHHHH
L A 502HCD 3HPhHHH
L A 503HCD 3HHPhHH
L A 504Hi PrMeHHHH
L A 505Hi PrHMeHHH
L A 506Hi PrHHMeHH
L A 507Hi PrCD 3HHHH
L A 508Hi PrHCD 3HHH
L A 509Hi PrHHCD 3HH
L A 510Hi Pri PrHHHH
L A 511Hi PrHi PrHHH
L A 512Hi PrHHi PrHH
L A 513Hi PrPhHHHH
L A 514Hi PrHPhHHH
L A 515Hi PrHHPhHH
L A 516HPhMeHHHH
L A 517HPhHMeHHH
L A 518HPhHHMeHH
L A 519HPhCD 3HHHH
L A 520HPhHCD 3HHH
L A 521HPhHHCD 3HH
L A 522HPhi PrHHHH
L A 523HPhHi PrHHH
L A 524HPhHHi PrHH
L A 525HPhPhHHHH
L A 526HPhHPhHHH
L A 527HPhHHPhHH
L A 528HHMeMeHHH
L A 529HHCD 3MeHHH
L A 530HHi PrMeHHH
L A 531HHPhMeHHH
L A 532HHMeCD 3HHH
L A 533HHCD 3CD 3HHH
L A 534HHi PrCD 3HHH
L A 535HHPhCD 3HHH
L A 536HHMei PrHHH
L A 537HHCD 3i PrHHH
L A 538HHi Pri PrHHH
L A 539HHPhi PrHHH
L A 540HHMePhHHH
L A 541HHCD 3PhHHH
L A 542HHi PrPhHHH
L A 543 L A 544 L A 545 L A 546 L A 547 L A 548 L A 549
H H H H H H HH H H H H H HPh Me CD 3 i Pr Ph Me CD 3Ph H H H H H HH Me Me Me Me CD 3 CD 3H H H H H H HH H H H H H H
L A 550HHi PrHCD 3HH
L A 551HHPhHCD 3HH
L A 552HHMeHi PrHH
L A 553HHCD 3Hi PrHH
L A 554HHi PrHi PrHH
L A 555HHPhHi PrHH
L A 556HHMeHPhHH
L A 557HHCD 3HPhHH
L A 558HHi PrHPhHH
L A 559HHPhHPhHH
L A 560MeMeHMeHHH
L A 561HMeMeMeHHH
L A 562CD 3MeHMeHHH
L A 563HMeCD 3MeHHH
L A 564iPrMeHMeHHH
L A 565HMei PrMeHHH
L A 566PhMeHMeHHH
L A 567HMePhMeHHH
L A 568MeCD 3HCD 3HHH
L A 569HCD 3MeCD 3HHH
L A 570CD 3CD 3HCD 3HHH
L A 571HCD 3CD 3CD 3HHH
L A 572i PrCD 3HCD 3HHH
L A 573HCD 3i PrCD 3HHH
L A 574PhCD 3HCD 3HHH
L A 575HCD 3PhCD 3HHH
L A 576Mei PrHi PrHHH
L A 577Hi PrMei PrHHH
L A 578CD 3i PrHi PrHHH
L A 579Hi PrCD 3i PrHHH
L A 580i Pri PrHi PrHHH
L A 581Hi Pri Pri PrHHH
L A 582Phi PrHi PrHHH
L A 583Hi PrPhi PrHHH
L A 584MePhHPhHHH
L A 585HPhMePhHHH
L A 586CD 3PhHPhHHH
L A 587HPhCD 3PhHHH
L A 588i PrPhHPhHHH
L A 589HPhiPrPhHHH
L A 590PhPhHPhHHH
L A 591HPhPhPhHHH
L A 592 L A 593 L A 594 L A 595 L A 596
H Me H H HH H Me H HH H H Me HH H H H MeH H H H HH H H H HH H H H H
L A 597HHHHMeHH
L A 598 L A 599 L A 600 L A 601 L A 602
CD 3 H H H HH CD 3 H H HH H CD 3 H HH H H CD 3 HH H H H CD 3H H H H HH H H H H
L A 603i PrHHHHHH
L A 604Hi PrHHHHH
L A 605HHi PrHHHH
L A 606HHHi PrHHH
L A 607HHHHi PrHH
L A 608PhHHHHHH
L A 609HPhHHHHH
L A 610HHPhHHHH
L A 611HHHPhHHH
L A 612HHHHPhHH
L A 613MeMeHHHHH
L A 614MeHMeHHHH
L A 615MeHHMeHHH
L A 616MeHHHMeHH
L A 617MeCD 3HHHHH
L A 618MeHCD 3HHHH
L A 619MeHHCD 3HHH
L A 620MeHHHCD 3HH
L A 621Mei PrHHHHH
L A 622MeHi PrHHHH
L A 623MeHHi PrHHH
L A 624MeHHHi PrHH
L A 625MePhHHHHH
L A 626MeHPhHHHH
L A 627MeHHPhHHH
L A 628MeHHHPhHH
L A 629CD 3MeHHHHH
L A 630CD 3HMeHHHH
L A 631CD 3HHMeHHH
L A 632CD 3HHHMeHH
L A 633CD 3CD 3HHHHH
L A 634CD 3HCD 3HHHH
L A 635CD 3HHCD 3HHH
L A 636CD 3HHHCD 3HH
L A 637CD 3i PrHHHHH
L A 638CD 3Hi PrHHHH
L A 639CD 3HHi PrHHH
L A 640CD 3HHHi PrHH
L A 641CD 3PhHHHHH
L A 642CD 3HPhHHHH
L A 643CD 3HHPhHHH
L A 644CD 3HHHPhHH
L A 645i PrMeHHHHH
L A 646i PrHMeHHHH
L A 647i PrHHMeHHH
L A 648i PrHHHMeHH
L A 649i PrCD 3HHHHH
L A 650i PrHCD 3HHHH
L A 651i PrHHCD 3HHH
L A 652i PrHHHCD 3HH
L A 653 L A 654 L A 655 L A 656 L A 657
i Pr i Pr i Pr i Pr i Pri Pr H H H PhH i Pr H H HH H i Pr H HH H H i Pr HH H H H HH H H H H
L A 658i PrHPhHHHH
L A 659i PrHHPhHHH
L A 660i PrHHHPhHH
L A 661PhMeHHHHH
L A 662PhHMeHHHH
L A 663PhHHMeHHH
L A 664PhHHHMeHH
L A 665PhCD 3HHHHH
L A 666PhHCD 3HHHH
L A 667PhHHCD 3HHH
L A 668PhHHHCD 3HH
L A 669Phi PrHHHHH
L A 670PhHi PrHHHH
L A 671PhHHi PrHHH
L A 672PhHHHi PrHH
L A 673PhPhHHHHH
L A 674PhHPhHHHH
L A 675PhHHPhHHH
L A 676PhHHHPhHH
L A 677HMeMeHHHH
L A 678HMeHMeHHH
L A 679HMeHHMeHH
L A 680HMeCD 3HHHH
L A 681HMeHCD 3HHH
L A 682HMeHHCD 3HH
L A 683HMei PrHHHH
L A 684HMeHi PrHHH
L A 685HMeHHi PrHH
L A 686HMePhHHHH
L A 687HMeHPhHHH
L A 688HMeHHPhHH
L A 689HCD 3MeHHHH
L A 690HCD 3HMeHHH
L A 691HCD 3HHMeHH
L A 692HCD 3CD 3HHHH
L A 693HCD 3HCD 3HHH
L A 694HCD 3HHCD 3HH
L A 695HCD 3i PrHHHH
L A 696HCD 3Hi PrHHH
L A 697HCD 3HHi PrHH
L A 698HCD 3PhHHHH
L A 699HCD 3HPhHHH
L A 700HCD 3HHPhHH
L A 701Hi PrMeHHHH
L A 702Hi PrHMeHHH
L A 703Hi PrHHMeHH
L A 704Hi PrCD 3HHHH
L A 705Hi PrHCD 3HHH
L A 706Hi PrHHCD 3HH
L A 707Hi Pri PrHHHH
L A 708 L A 709 L A 710 L A 711 L A 712
H H H H Hi Pr i Pr i Pr i Pr i PrH H Ph H Hi Pr H H Ph HH i Pr H H PhH H H H HH H H H H
L A 713HPhMeHHHH
L A 714HPhHMeHHH
L A 715HPhHHMeHH
L A 716HPhCD 3HHHH
L A 717HPhHCD 3HHH
L A 718HPhHHCD 3HH
L A 719HPhi PrHHHH
L A 720HPhHi PrHHH
L A 721HPhHHi PrHH
L A 722HPhPhHHHH
L A 723HPhHPhHHH
L A 724HPhHHPhHH
L A 725HHMeMeHHH
L A 726HHCD 3MeHHH
L A 727HHi PrMeHHH
L A 728HHPhMeHHH
L A 729HHMeCD 3HHH
L A 730HHCD 3CD 3HHH
L A 731HHi PrCD 3HHH
L A 732HHPhCD 3HHH
L A 733HHMei PrHHH
L A 734HHCD 3i PrHHH
L A 735HHi Pri PrHHH
L A 736HHPhi PrHHH
L A 737HHMePhHHH
L A 738HHCD 3PhHHH
L A 739HHi PrPhHHH
L A 740HHPhPhHHH
L A 741HHMeHMeHH
L A 742HHCD 3HMeHH
L A 743HHi PrHMeHH
L A 744HHPhHMeHH
L A 745HHMeHCD 3HH
L A 746HHCD 3HCD 3HH
L A 747HHi PrHCD 3HH
L A 748HHPhHCD 3HH
L A 749HHMeHi PrHH
L A 750HHCD 3HPrHH
L A 751HHi PrHi PrHH
L A 752HHPhHi PrHH
L A 753HHMeHPhHH
L A 754HHCD 3HPhHH
L A 755HHi PrHPhHH
L A 756HHPhHPhHH
L A 757MeMeHMeHHH
L A 758HMeMeMeHHH
L A 759CD 3MeHMeHHH
L A 760HMeCD 3MeHHH
L A 761i PrMeHMeHHH
L A 762HMei PrMeHHH
L A 763 L A 764 L A 765 L A 766 L A 767
Ph H Me H CD 3Me Me CD 3 CD 3 CD 3H Ph H Me HMe Me CD 3 CD 3 CD 3H H H H HH H H H HH H H H H
L A 768HCD 3CD3CD 3HHH
L A 769i PrCD 3HCD 3HHH
L A 770HCD 3i PrCD 3HHH
L A 771PhCD 3HCD 3HHH
L A 772HCD 3PhCD 3HHH
L A 773Mei PrHi PrHHH
L A 774Hi PrMei PrHHH
L A 775CD 3i PrHi PrHHH
L A 776Hi PrCD 3i PrHHH
L A 777i Pri PrHi PrHHH
L A 778Hi PriPri PrHHH
L A 779Phi PrHi PrHHH
L A 780Hi PrPhi PrHHH
L A 781MePhHPhHHH
L A 782HPhMePhHHH
L A 783CD 3PhHPhHHH
L A 784HPhCD 3PhHHH
L A 785i PrPhHPhHHH
L A 786HPhi PrPhHHH
L A 787PhPhHPhHHH
L A 788HPhPhPhHHH
L A 789 L A 790 L A 791 L A 792 L A 793
H Me H H HH H Me H HH H H Me HH H H H MeH H H H HH H H H HH H H H H
L A 794HHHHMeHH
L A 795CD 3HHHHHH
L A 796HCD 3HHHHH
L A 797HHCD 3HHHH
L A 798HHHCD 3HHH
L A 799HHHHCD 3HH
L A 800i PrHHHHHH
L A 801Hi PrHHHHH
L A 802HHi PrHHHH
L A 803HHHi PrHHH
L A 804HHHHi PrHH
L A 805PhHHHHHH
L A 806HPhHHHHH
L A 807HHPhHHHH
L A 808HHHPhHHH
L A 809HHHHPhHH
L A 810MeMeHHHHH
L A 811MeHMeHHHH
L A 812MeHHMeHHH
L A 813MeHHHMeHH
L A 814MeCD 3HHHHH
L A 815MeHCD 3HHHH
L A 816MeHHCD 3HHH
L A 817MeHHHCD 3HH
L A 818 L A 819 L A 820 L A 821 L A 822
Me Me Me Me Mei Pr H H H PhH i Pr H H HH H i Pr H HH H H i Pr HH H H H HH H H H H
L A 823MeHPhHHHH
L A 824MeHHPhHHH
L A 825MeHHHPhHH
L A 826CD 3MeHHHHH
L A 827CD 3HMeHHHH
L A 828CD 3HHMeHHH
L A 829CD 3HHHMeHH
L A 830CD 3CD 3HHHHH
L A 831CD 3HCD 3HHHH
L A 832CD 3HHCD 3HHH
L A 833CD 3HHHCD 3HH
L A 834CD 3iPrHHHHH
L A 835CD 3Hi PrHHHH
L A 836CD 3HHi PrHHH
L A 837CD 3HHHi PrHH
L A 838CD 3PhHHHHH
L A 839CD 3HPhHHHH
L A 840CD 3HHPhHHH
L A 841CD 3HHHPhHH
L A 842i PrMeHHHHH
L A 843i PrHMeHHHH
L A 844i PrHHMeHHH
L A 845i PrHHHMeHH
L A 846i PrCD 3HHHHH
L A 847i PrHCD 3HHHH
L A 848i PrHHCD 3HHH
L A 849i PrHHHCD 3HH
L A 850i Pri PrHHHHH
L A 851i PrHi PrHHHH
L A 852i PrHHi PrHHH
L A 853i PrHHHi PrHH
L A 854i PrPhHHHHH
L A 855i PrHPhHHHH
L A 856i PrHHPhHHH
L A 857i PrHHHPhHH
L A 858PhMeHHHHH
L A 859PhHMeHHHH
L A 860PhHHMeHHH
L A 861PhHHHMeHH
L A 862PhCD 3HHHHH
L A 863PhHCD 3HHHH
L A 864PhHHCD 3HHH
L A 865PhHHHCD 3HH
L A 866Phi PrHHHHH
L A 867PhHi PrHHHH
L A 868PhHHi PrHHH
L A 869PhHHHi PrHH
L A 870PhPhHHHHH
L A 871PhHPhHHHH
L A 872PhHHPhHHH
L A 873 L A 874 L A 875 L A 876 L A 877
Ph H H H HH Me Me Me MeH Me H H CD 3H H Me H HPh H H Me HH H H H HH H H H H
L A 878HMeHCD 3HHH
L A 879HMeHHCD 3HH
L A 880HMei PrHHHH
L A 881HMeHi PrHHH
L A 882HMeHHi PrHH
L A 883HMePhHHHH
L A 884HMeHPhHHH
L A 885HMeHHPhHH
L A 886HCD 3MeHHHH
L A 887HCD 3HMeHHH
L A 888HCD 3HHMeHH
L A 889HCD 3CD 3HHHH
L A 890HCD 3HCD 3HHH
L A 891HCD 3HHCD 3HH
L A 892HCD 3i PrHHHH
L A 893HCD 3Hi PrHHH
L A 894HCD 3HHi PrHH
L A 895HCD 3PhHHHH
L A 896HCD 3HPhHHH
L A 897HCD 3HHPhHH
L A 898Hi PrMeHHHH
L A 899Hi PrHMeHHH
L A 900Hi PrHHMeHH
L A 901Hi PrCD 3HHHH
L A 902Hi PrHCD 3HHH
L A 903Hi PrHHCD 3HH
L A 904Hi Pri PrHHHH
L A 905Hi PrHi PrHHH
L A 906Hi PrHHi PrHH
L A 907Hi PrPhHHHH
L A 908Hi PrHPhHHH
L A 909Hi PrHHPhHH
L A 910HPhMeHHHH
L A 911HPhHMeHHH
L A 912HPhHHMeHH
L A 913HPhCD 3HHHH
L A 914HPhHCD 3HHH
L A 915HPhHHCD 3HH
L A 916HPhi PrHHHH
L A 917HPhHi PrHHH
L A 918HPhHHi PrHH
L A 919HPhPhHHHH
L A 920HPhHPhHHH
L A 921HPhHHPhHH
L A 922HHMeMeHHH
L A 923HHCD 3MeHHH
L A 924HHi PrMeHHH
L A 925HHPhMeHHH
L A 926HHMeCD 3HHH
L A 927HHCD 3CD 3HHH
L A 928 L A 929 L A 930 L A 931 L A 932
H H H H HH H H H Hi Pr Ph Me CD 3 i PrCD 3 CD 3 i Pr i Pr i PrH H H H HH H H H HH H H H H
L A 933HHPhi PrHHH
L A 934HHMePhHHH
L A 935HHCD 3PhHHH
L A 936HHi PrPhHHH
L A 937HHPhPhHHH
L A 938HHMeHMeHH
L A 939HHCD 3HMeHH
L A 940HHi PrHMeHH
L A 941HHPhHMeHH
L A 942HHMeHCD 3HH
L A 943HHCD 3HCD 3HH
L A 944HHi PrHCD 3HH
L A 945HHPhHCD 3HH
L A 946HHMeHi PrHH
L A 947HHCD 3Hi PrHH
L A 948HHi PrHi PrHH
L A 949HHPhHi PrHH
L A 950HHMeHPhHH
L A 951HHCD 3HPhHH
L A 952HHi PrHPhHH
L A 953HHPhHPhHH
L A 954MeMeHMeHHH
L A 955HMeMeMeHHH
L A 956CD 3MeHMeHHH
L A 957HMeCD 3MeHHH
L A 958i PrMeHMeHHH
L A 959HMei PrMeHHH
L A 960PhMeHMeHHH
L A 961HMePhMeHHH
L A 962MeCD 3HCD 3HHH
L A 963HCD 3MeCD 3HHH
L A 964CD 3CD 3HCD 3HHH
L A 965HCD 3CD3CD 3HHH
L A 966i PrCD 3HCD 3HHH
L A 967HCD 3i PrCD 3HHH
L A 968PhCD 3HCD 3HHH
L A 969HCD 3PhCD 3HHH
L A 970Mei PrHi PrHHH
L A 971Hi PrMei PrHHH
L A 972CD 3i PrHi PrHHH
L A 973Hi PrCD 3i PrHHH
L A 974i Pri PrHi PrHHH
L A 975Hi PriPri PrHHH
L A 976Phi PrHi PrHHH
L A 977Hi PrPhi PrHHH
L A 978MePhHPhHHH
L A 979HPhMePhHHH
L A 980CD 3PhHPhHHH
L A 981HPhCD 3PhHHH
L A 982i PrPhHPhHHH
L A 983 L A 984 L A 985
H Ph HPh Ph Phi Pr H PhPh Ph PhH H HH H HH H H
L A 986 L A 987 L A 988 L A 989 L A 990
H Me H H HH H Me H HH H H Me HH H H H MeH H H H HH H H H HH H H H H
L A 991HHHHMeHH
L A 992CD 3HHHHHH
L A 993HCD 3HHHHH
L A 994HHCD 3HHHH
L A 995HHHCD 3HHH
L A 996HHHHCD 3HH
L A 997i PrHHHHHH
L A 998Hi PrHHHHH
L A 999HHi PrHHHH
L A 1000HHHi PrHHH
L A 1001HHHHi PrHH
L A 1002PhHHHHHH
L A 1003HPhHHHHH
L A 1004HHPhHHHH
L A 1005HHHPhHHH
L A 1006HHHHPhHH
L A 1007MeMeHHHHH
L A 1008MeHMeHHHH
L A 1009MeHHMeHHH
L A 1010MeHHHMeHH
L A 1011MeCD 3HHHHH
L A 1012MeHCD 3HHHH
L A 1013MeHHCD 3HHH
L A 1014MeHHHCD 3HH
L A 1015Mei PrHHHHH
L A 1016MeHi PrHHHH
L A 1017MeHHi PrHHH
L A 1018MeHHHi PrHH
L A 1019MePhHHHHH
L A 1020MeHPhHHHH
L A 1021MeHHPhHHH
L A 1022MeHHHPhHH
L A 1023CD 3MeHHHHH
L A 1024CD 3HMeHHHH
L A 1025CD 3HHMeHHH
L A 1026CD 3HHHMeHH
L A 1027CD 3CD 3HHHHH
L A 1028CD 3HCD 3HHHH
L A 1029CD 3HHCD 3HHH
L A 1030CD 3HHHCD 3HH
L A 1031CD 3i PrHHHHH
L A 1032CD 3Hi PrHHHH
L A 1033CD 3HHi PrHHH
L A 1034CD 3HHHi PrHH
L A 1035CD 3PhHHHHH
L A 1036CD 3HPhHHHH
L A 1037CD 3HHPhHHH
L A 1038 L A 1039 L A 1040 L A 1041 L A 1042
CD 3 i Pr i Pr i Pr i PrH Me H H HH H Me H HH H H Me HPh H H H MeH H H H HH H H H H
L A 1043i PrCD 3HHHHH
L A 1044i PrHCD 3HHHH
L A 1045i PrHHCD 3HHH
L A 1046i PrHHHCD 3HH
L A 1047i Pri PrHHHHH
L A 1048i PrHi PrHHHH
L A 1049i PrHHi PrHHH
L A 1050i PrHHHi PrHH
L A 1051i PrPhHHHHH
L A 1052i PrHPhHHHH
L A 1053i PrHHPhHHH
L A 1054i PrHHHPhHH
L A 1055PhMeHHHHH
L A 1056PhHMeHHHH
L A 1057PhHHMeHHH
L A 1058PhHHHMeHH
L A 1059PhCD 3HHHHH
L A 1060PhHCD 3HHHH
L A 1061PhHHCD 3HHH
L A 1062PhHHHCD 3HH
L A 1063Phi PrHHHHH
L A 1064PhHi PrHHHH
L A 1065PhHHi PrHHH
L A 1066PhHHHi PrHH
L A 1067PhPhHHHHH
L A 1068PhHPhHHHH
L A 1069PhHHPhHHH
L A 1070PhHHHPhHH
L A 1071HMeMeHHHH
L A 1072HMeHMeHHH
L A 1073HMeHHMeHH
L A 1074HMeCD 3HHHH
L A 1075HMeHCD 3HHH
L A 1076HMeHHCD 3HH
L A 1077HMei PrHHHH
L A 1078HMeHi PrHHH
L A 1079HMeHHi PrHH
L A 1080HMePhHHHH
L A 1081HMeHPhHHH
L A 1082HMeHHPhHH
L A 1083HCD 3MeHHHH
L A 1084HCD 3HMeHHH
L A 1085HCD 3HHMeHH
L A 1086HCD 3CD 3HHHH
L A 1087HCD 3HCD 3HHH
L A 1088HCD 3HHCD 3HH
L A 1089HCD 3i PrHHHH
L A 1090HCD 3Hi PrHHH
L A 1091HCD 3HHi PrHH
L A 1092HCD 3PhHHHH
L A 1093 L A 1094 L A 1095 L A 1096 L A 1097
H H H H HCD 3 CD 3 i Pr i Pr i PrH H Me H HPh H H Me HH Ph H H MeH H H H HH H H H H
L A 1098Hi PrCD 3HHHH
L A 1099Hi PrHCD 3HHH
L A 1100Hi PrHHCD 3HH
L A 1101Hi Pri PrHHHH
L A 1102Hi PrHi PrHHH
L A 1103Hi PrHHi PrHH
L A 1104Hi PrPhHHHH
L A 1105Hi PrHPhHHH
L A 1106Hi PrHHPhHH
L A 1107HPhMeHHHH
L A 1108HPhHMeHHH
L A 1109HPhHHMeHH
L A 1110HPhCD 3HHHH
L A 1111HPhHCD 3HHH
L A 1112HPhHHCD 3HH
L A 1113HPhi PrHHHH
L A 1114HPhHi PrHHH
L A 1115HPhHHi PrHH
L A 1116HPhPhHHHH
L A 1117HPhHPhHHH
L A 1118HPhHHPhHH
L A 1119HHMeMeHHH
L A 1120HHCD 3MeHHH
L A 1121HHi PrMeHHH
L A 1122HHPhMeHHH
L A 1123HHMeCD 3HHH
L A 1124HHCD 3CD 3HHH
L A 1125HHi PrCD 3HHH
L A 1126HHPhCD 3HHH
L A 1127HHMei PrHHH
L A 1128HHCD3i PrHHH
L A 1129HHi Pri PrHHH
L A 1130HHPhi PrHHH
L A 1131HHMePhHHH
L A 1132HHCD 3PhHHH
L A 1133HHi PrPhHHH
L A 1134HHPhPhHHH
L A 1135HHMeHMeHH
L A 1136HHCD 3HMeHH
L A 1137HHi PrHMeHH
L A 1138HHPhHMeHH
L A 1139HHMeHCD 3HH
L A 1140HHCD 3HCD 3HH
L A 1141HHi PrHCD 3HH
L A 1142HHPhHCD 3HH
L A 1143HHMeHi PrHH
L A 1144HHCD 3Hi PrHH
L A 1145HHi PrHi PrHH
L A 1146HHPhHi PrHH
L A 1147HHMeHPhHH
L A 1148 L A 1149 L A 1150 L A 1151 L A 1152
H H H Me HH H H Me MeCD 3 i Pr Ph H MeH H H Me MePh Ph Ph H HH H H H HH H H H H
L A 1153CD 3MeHMeHHH
L A 1154HMeCD 3MeHHH
L A 1155i PrMeHMeHHH
L A 1156HMei PrMeHHH
L A 1157PhMeHMeHHH
L A 1158HMePhMeHHH
L A 1159MeCD 3HCD 3HHH
L A 1160HCD 3MeCD 3HHH
L A 1161CD 3CD 3HCD 3HHH
L A 1162HCD 3CD3CD 3HHH
L A 1163i PrCD 3HCD 3HHH
L A 1164HCD 3iPrCD 3HHH
L A 1165PhCD 3HCD 3HHH
L A 1166HCD 3PhCD 3HHH
L A 1167Mei PrHi PrHHH
L A 1168Hi PrMei PrHHH
L A 1169CD 3i PrHi PrHHH
L A 1170Hi PrCD 3i PrHHH
L A 1171i Pri PrHi PrHHH
L A 1172Hi PriPri PrHHH
L A 1173Phi PrHi PrHHH
L A 1174Hi PrPhi PrHHH
L A 1175MePhHPhHHH
L A 1176HPhMePhHHH
L A 1177CD 3PhHPhHHH
L A 1178HPhCD 3PhHHH
L A 1179i PrPhHPhHHH
L A 1180HPhi PrPhHHH
L A 1181PhPhHPhHHH
L A 1182HPhPhPhHHH
L A 1183 L A 1184 L A 1185 L A 1186 L A 1187
H Me H H HH H Me H HH H H Me HH H H H MeH H H H HH H H H HH H H H H
L A 1188HHHHMeHH
L A 1189CD 3HHHHHH
L A 1190HCD 3HHHHH
L A 1191HHCD 3HHHH
L A 1192HHHCD 3HHH
L A 1193HHHHCD 3HH
L A 1194i PrHHHHHH
L A 1195Hi PrHHHHH
L A 1196HHi PrHHHH
L A 1197HHHi PrHHH
L A 1198HHHHi PrHH
L A 1199PhHHHHHH
L A 1200HPhHHHHH
L A 1201HHPhHHHH
L A 1202HHHPhHHH
L A 1203 L A 1204 L A 1205 L A 1206 L A 1207
H Me Me Me MeH Me H H HH H Me H HH H H Me HPh H H H MeH H H H HH H H H H
L A 1208MeCD 3HHHHH
L A 1209MeHCD 3HHHH
L A 1210MeHHCD 3HHH
L A 1211MeHHHCD 3HH
L A 1212Mei PrHHHHH
L A 1213MeHi PrHHHH
L A 1214MeHHi PrHHH
L A 1215MeHHHi PrHH
L A 1216MePhHHHHH
L A 1217MeHPhHHHH
L A 1218MeHHPhHHH
L A 1219MeHHHPhHH
L A 1220CD 3MeHHHHH
L A 1221CD 3HMeHHHH
L A 1222CD 3HHMeHHH
L A 1223CD 3HHHMeHH
L A 1224CD 3CD 3HHHHH
L A 1225CD 3HCD 3HHHH
L A 1226CD 3HHCD 3HHH
L A 1227CD 3HHHCD 3HH
L A 1228CD 3i PrHHHHH
L A 1229CD 3Hi PrHHHH
L A 1230CD 3HHi PrHHH
L A 1231CD 3HHHi PrHH
L A 1232CD 3PhHHHHH
L A 1233CD 3HPhHHHH
L A 1234CD 3HHPhHHH
L A 1235CD 3HHHPhHH
L A 1236i PrMeHHHHH
L A 1237i PrHMeHHHH
L A 1238i PrHHMeHHH
L A 1239i PrHHHMeHH
L A 1240i PrCD 3HHHHH
L A 1241i PrHCD 3HHHH
L A 1242i PrHHCD 3HHH
L A 1243i PrHHHCD 3HH
L A 1244i Pri PrHHHHH
L A 1245i PrHi PrHHHH
L A 1246i PrHHi PrHHH
L A 1247i PrHHHi PrHH
L A 1248i PrPhHHHHH
L A 1249i PrHPhHHHH
L A 1250i PrHHPhHHH
L A 1251i PrHHHPhHH
L A 1252PhMeHHHHH
L A 1253PhHMeHHHH
L A 1254PhHHMeHHH
L A 1255PhHHHMeHH
L A 1256PhCD 3HHHHH
L A 1257PhHCD 3HHHH
L A 1258 L A 1259 L A 1260 L A 1261 L A 1262
Ph Ph Ph Ph PhH H i Pr H HH H H i Pr HCD 3 H H H i PrH CD 3 H H HH H H H HH H H H H
L A 1263PhHHHi PrHH
L A 1264PhPhHHHHH
L A 1265PhHPhHHHH
L A 1266PhHHPhHHH
L A 1267PhHHHPhHH
L A 1268HMeMeHHHH
L A 1269HMeHMeHHH
L A 1270HMeHHMeHH
L A 1271HMeCD 3HHHH
L A 1272HMeHCD 3HHH
L A 1273HMeHHCD 3HH
L A 1274HMei PrHHHH
L A 1275HMeHi PrHHH
L A 1276HMeHHi PrHH
L A 1277HMePhHHHH
L A 1278HMeHPhHHH
L A 1279HMeHHPhHH
L A 1280HCD 3MeHHHH
L A 1281HCD 3HMeHHH
L A 1282HCD 3HHMeHH
L A 1283HCD 3CD 3HHHH
L A 1284HCD 3HCD 3HHH
L A 1285HCD 3HHCD 3HH
L A 1286HCD 3i PrHHHH
L A 1287HCD 3Hi PrHHH
L A 1288HCD 3HHi PrHH
L A 1289HCD 3PhHHHH
L A 1290HCD 3HPhHHH
L A 1291HCD 3HHPhHH
L A 1292Hi PrMeHHHH
L A 1293Hi PrHMeHHH
L A 1294Hi PrHHMeHH
L A 1295Hi PrCD 3HHHH
L A 1296Hi PrHCD 3HHH
L A 1297Hi PrHHCD 3HH
L A 1298Hi Pri PrHHHH
L A 1299Hi PrHi PrHHH
L A 1300Hi PrHHi PrHH
L A 1301Hi PrPhHHHH
L A 1302Hi PrHPhHHH
L A 1303Hi PrHHPhHH
L A 1304HPhMeHHHH
L A 1305HPhHMeHHH
L A 1306HPhHHMeHH
L A 1307HPhCD 3HHHH
L A 1308HPhHCD 3HHH
L A 1309HPhHHCD 3HH
L A 1310HPhi PrHHHH
L A 1311HPhHi PrHHH
L A 1312HPhHHi PrHH
L A 1313 L A 1314 L A 1315 L A 1316 L A 1317
H H H H HPh Ph Ph H HPh H H Me CD 3H Ph H Me MeH H Ph H HH H H H HH H H H H
L A 1318HHi PrMeHHH
L A 1319HHPhMeHHH
L A 1320HHMeCD 3HHH
L A 1321HHCD 3CD 3HHH
L A 1322HHi PrCD 3HHH
L A 1323HHPhCD 3HHH
L A 1324HHMei PrHHH
L A 1325HHCD 3i PrHHH
L A 1326HHiPri PrHHH
L A 1327HHPhi PrHHH
L A 1328HHMePhHHH
L A 1329HHCD 3PhHHH
L A 1330HHi PrPhHHH
L A 1331HHPhPhHHH
L A 1332HHMeHMeHH
L A 1333HHCD 3HMeHH
L A 1334HHi PrHMeHH
L A 1335HHPhHMeHH
L A 1336HHMeHCD 3HH
L A 1337HHCD 3HCD 3HH
L A 1338HHi PrHCD 3HH
L A 1339HHPhHCD 3HH
L A 1340HHMeHi PrHH
L A 1341HHCD 3Hi PrHH
L A 1342HHi PrHi PrHH
L A 1343HHPhHi PrHH
L A 1344HHMeHPhHH
L A 1345HHCD 3HPhHH
L A 1346HHi PrHPhHH
L A 1347HHPhHPhHH
L A 1348MeMeHMeHHH
L A 1349HMeMeMeHHH
L A 1350CD 3MeHMeHHH
L A 1351HMeCD 3MeHHH
L A 1352i PrMeHMeHHH
L A 1353HMei PrMeHHH
L A 1354PhMeHMeHHH
L A 1355HMePhMeHHH
L A 1356MeCD 3HCD 3HHH
L A 1357HCD 3MeCD 3HHH
L A 1358CD 3CD 3HCD 3HHH
L A 1359HCD 3CD 3CD 3HHH
L A 1360i PrCD 3HCD 3HHH
L A 1361HCD 3i PrCD 3HHH
L A 1362PhCD 3HCD 3HHH
L A 1363HCD 3PhCD 3HHH
L A 1364Mei PrHi PrHHH
L A 1365Hi PrMei PrHHH
L A 1366CD 3i PrHi PrHHH
L A 1367Hi PrCD 3i PrHHH
L A 1368 L A 1369 L A 1370 L A 1371 L A 1372
i Pr H Ph H Mei Pr i Pr i Pr i Pr PhH i Pr H Ph Hi Pr i Pr i Pr i Pr PhH H H H HH H H H HH H H H H
L A 1373HPhMePhHHH
L A 1374CD 3PhHPhHHH
L A 1375HPhCD 3PhHHH
L A 1376i PrPhHPhHHH
L A 1377HPhi PrPhHHH
L A 1378PhPhHPhHHH
L A 1379HPhPhPhHHH
L A 1380 L A 1381 L A 1382 L A 1383 L A 1384 L A 1385 L A 1386
H Me H H H H CD 3H H Me H H H HH H H Me H H HH H H H Me H HH H H H H Me HH H H H H H HH H H H H H H
L A 1387HCD 3HHHHH
L A 1388HHCD 3HHHH
L A 1389HHHCD 3HHH
L A 1390HHHHCD 3HH
L A 1391i PrHHHHHH
L A 1392Hi PrHHHHH
L A 1393HHi PrHHHH
L A 1394HHHi PrHHH
L A 1395HHHHi PrHH
L A 1396PhHHHHHH
L A 1397HPhHHHHH
L A 1398HHPhHHHH
L A 1399HHHPhHHH
L A 1400HHHHPhHH
L A 1401MeMeHHHHH
L A 1402MeHMeHHHH
L A 1403MeHHMeHHH
L A 1404MeHHHMeHH
L A 1405MeCD 3HHHHH
L A 1406MeHCD 3HHHH
L A 1407MeHHCD 3HHH
L A 1408MeHHHCD 3HH
L A 1409Mei PrHHHHH
L A 1410MeHi PrHHHH
L A 1411MeHHi PrHHH
L A 1412MeHHHi PrHH
L A 1413MePhHHHHH
L A 1414MeHPhHHHH
L A 1415MeHHPhHHH
L A 1416MeHHHPhHH
L A 1417CD 3MeHHHHH
L A 1418CD 3HMeHHHH
L A 1419CD 3HHMeHHH
L A 1420CD 3HHHMeHH
L A 1421CD 3CD 3HHHHH
L A 1422CD 3HCD 3HHHH
L A 1423 L A 1424 L A 1425 L A 1426 L A 1427 L A 1428 L A 1429
CD 3 CD 3 CD 3 CD 3 CD 3 CD 3 CD 3H H i Pr H H H PhH H H i Pr H H HCD 3 H H H i Pr H HH CD 3 H H H i Pr HH H H H H H HH H H H H H H
L A 1430CD 3HPhHHHH
L A 1431CD 3HHPhHHH
L A 1432CD 3HHHPhHH
L A 1433i PrMeHHHHH
L A 1434i PrHMeHHHH
L A 1435i PrHHMeHHH
L A 1436i PrHHHMeHH
L A 1437i PrCD 3HHHHH
L A 1438i PrHCD 3HHHH
L A 1439i PrHHCD 3HHH
L A 1440i PrHHHCD 3HH
L A 1441i Pri PrHHHHH
L A 1442i PrHi PrHHHH
L A 1443i PrHHi PrHHH
L A 1444i PrHHHi PrHH
L A 1445i PrPhHHHHH
L A 1446i PrHPhHHHH
L A 1447i PrHHPhHHH
L A 1448i PrHHHPhHH
L A 1449PhMeHHHHH
L A 1450PhHMeHHHH
L A 1451PhHHMeHHH
L A 1452PhHHHMeHH
L A 1453PhCD 3HHHHH
L A 1454PhHCD 3HHHH
L A 1455PhHHCD 3HHH
L A 1456PhHHHCD 3HH
L A 1457Phi PrHHHHH
L A 1458PhHi PrHHHH
L A 1459PhHHi PrHHH
L A 1460PhHHHi PrHH
L A 1461PhPhHHHHH
L A 1462PhHPhHHHH
L A 1463PhHHPhHHH
L A 1464PhHHHPhHH
L A 1465HMeMeHHHH
L A 1466HMeHMeHHH
L A 1467HMeHHMeHH
L A 1468HMeCD 3HHHH
L A 1469HMeHCD 3HHH
L A 1470HMeHHCD 3HH
L A 1471HMei PrHHHH
L A 1472HMeHi PrHHH
L A 1473HMeHHi PrHH
L A 1474HMePhHHHH
L A 1475HMeHPhHHH
L A 1476HMeHHPhHH
L A 1477HCD 3MeHHHH
L A 1478 L A 1479 L A 1480 L A 1481 L A 1482 L A 1483 L A 1484
H H H H H H HCD 3 CD 3 CD 3 CD 3 CD 3 CD 3 CD 3H H CD 3 H H i Pr HMe H H CD 3 H H i PrH Me H H CD 3 H HH H H H H H HH H H H H H H
L A 1485HCD 3HHi PrHH
L A 1486HCD 3PhHHHH
L A 1487HCD 3HPhHHH
L A 1488HCD 3HHPhHH
L A 1489Hi PrMeHHHH
L A 1490Hi PrHMeHHH
L A 1491Hi PrHHMeHH
L A 1492Hi PrCD 3HHHH
L A 1493Hi PrHCD 3HHH
L A 1494Hi PrHHCD 3HH
L A 1495Hi Pri PrHHHH
L A 1496Hi PrHiPrHHH
L A 1497Hi PrHHi PrHH
L A 1498Hi PrPhHHHH
L A 1499Hi PrHPhHHH
L A 1500Hi PrHHPhHH
L A 1501HPhMeHHHH
L A 1502HPhHMeHHH
L A 1503HPhHHMeHH
L A 1504HPhCD 3HHHH
L A 1505HPhHCD 3HHH
L A 1506HPhHHCD 3HH
L A 1507HPhi PrHHHH
L A 1508HPhHi PrHHH
L A 1509HPhHHi PrHH
L A 1510HPhPhHHHH
L A 1511HPhHPhHHH
L A 1512HPhHHPhHH
L A 1513HHMeMeHHH
L A 1514HHCD 3MeHHH
L A 1515HHi PrMeHHH
L A 1516HHPhMeHHH
L A 1517HHMeCD 3HHH
L A 1518HHCD 3CD 3HHH
L A 1519HHi PrCD 3HHH
L A 1520HHPhCD 3HHH
L A 1521HHMei PrHHH
L A 1522HHCD 3i PrHHH
L A 1523HHi Pri PrHHH
L A 1524HHPhi PrHHH
L A 1525HHMePhHHH
L A 1526HHCD 3PhHHH
L A 1527HHi PrPhHHH
L A 1528HHPhPhHHH
L A 1529HHMeHMeHH
L A 1530HHCD 3HMeHH
L A 1531HHi PrHMeHH
L A 1532HHPhHMeHH
L A 1533
HHMeHCD 3HH
L A 1534HHCD 3HCD 3HH
L A 1535HHi PrHCD 3HH
L A 1536HHPhHCD 3HH
L A 1537HHMeHi PrHH
L A 1538HHCD 3Hi PrHH
L A 1539HHi PrHi PrHH
L A 1540HHPhHi PrHH
L A 1541HHMeHPhHH
L A 1542HHCD 3HPhHH
L A 1543HHi PrHPhHH
L A 1544HHPhHPhHH
L A 1545MeMeHMeHHH
L A 1546HMeMeMeHHH
L A 1547CD 3MeHMeHHH
L A 1548HMeCD 3MeHHH
L A 1549i PrMeHMeHHH
L A 1550HMei PrMeHHH
L A 1551PhMeHMeHHH
L A 1552HMePhMeHHH
L A 1553MeCD 3HCD 3HHH
L A 1554HCD 3MeCD 3HHH
L A 1555CD 3CD 3HCD 3HHH
L A 1556HCD 3CD 3CD 3HHH
L A 1557i PrCD 3HCD 3HHH
L A 1558HCD 3iPrCD 3HHH
L A 1559PhCD 3HCD 3HHH
L A 1560HCD 3PhCD 3HHH
L A 1561Mei PrHi PrHHH
L A 1562Hi PrMei PrHHH
L A 1563CD 3i PrHi PrHHH
L A 1564Hi PrCD 3i PrHHH
L A 1565iPri PrHi PrHHH
L A 1566Hi PriPri PrHHH
L A 1567Phi PrHi PrHHH
L A 1568Hi PrPhi PrHHH
L A 1569MePhHPhHHH
L A 1570HPhMePhHHH
L A 1571CD 3PhHPhHHH
L A 1572HPhCD 3PhHHH
L A 1573i PrPhHPhHHH
L A 1574HPhi PrPhHHH
L A 1575PhPhHPhHHH
L A 1576HPhPhPhHHH
L A 1577 L A 1578 L A 1579 L A 1580 L A 1581 L A 1582
H Me H H H HH H Me H H HH H H Me H HH H H H Me HH H H H H MeH H H H H HH H H H H H
L A 1583CD 3HHHHHH
L A 1584HCD 3HHHHH
L A 1585HHCD 3HHHH
L A 1586HHHCD 3HHH
L A 1587HHHHCD 3HH
L A 1588
i PrHHHHHH
L A 1589Hi PrHHHHH
L A 1590HHi PrHHHH
L A 1591HHHi PrHHH
L A 1592HHHHi PrHH
L A 1593PhHHHHHH
L A 1594HPhHHHHH
L A 1595HHPhHHHH
L A 1596HHHPhHHH
L A 1597HHHHPhHH
L A 1598MeMeHHHHH
L A 1599MeHMeHHHH
L A 1600MeHHMeHHH
L A 1601MeHHHMeHH
L A 1602MeCD 3HHHHH
L A 1603MeHCD 3HHHH
L A 1604MeHHCD 3HHH
L A 1605MeHHHCD 3HH
L A 1606Mei PrHHHHH
L A 1607MeHi PrHHHH
L A 1608MeHHi PrHHH
L A 1609MeHHHi PrHH
L A 1610MePhHHHHH
L A 1611MeHPhHHHH
L A 1612MeHHPhHHH
L A 1613MeHHHPhHH
L A 1614CD 3MeHHHHH
L A 1615CD 3HMeHHHH
L A 1616CD 3HHMeHHH
L A 1617CD 3HHHMeHH
L A 1618CD 3CD 3HHHHH
L A 1619CD 3HCD 3HHHH
L A 1620CD 3HHCD 3HHH
L A 1621CD 3HHHCD 3HH
L A 1622CD 3i PrHHHHH
L A 1623CD 3Hi PrHHHH
L A 1624CD 3HHi PrHHH
L A 1625CD 3HHHi PrHH
L A 1626CD 3PhHHHHH
L A 1627CD 3HPhHHHH
L A 1628CD 3HHPhHHH
L A 1629CD 3HHHPhHH
L A 1630i PrMeHHHHH
L A 1631i PrHMeHHHH
L A 1632i PrHHMeHHH
L A 1633i PrHHHMeHH
L A 1634i PrCD 3HHHHH
L A 1635i PrHCD 3HHHH
L A 1636i PrHHCD 3HHH
L A 1637i PrHHHCD 3HH
L A 1638i Pri PrHHHHH
L A 1639i PrHi PrHHHH
L A 1640i PrHHi PrHHH
L A 1641i PrHHHi PrHH
L A 1642i PrPhHHHHH
L A 1643 L A 1644 L A 1645 L A 1646 L A 1647 L A 1648
i Pr i Pr i Pr Ph Ph PhH H H Me H HPh H H H Me HH Ph H H H MeH H Ph H H HH H H H H HH H H H H H
L A 1649PhHHHMeHH
L A 1650PhCD 3HHHHH
L A 1651PhHCD 3HHHH
L A 1652PhHHCD 3HHH
L A 1653PhHHHCD 3HH
L A 1654Phi PrHHHHH
L A 1655PhHi PrHHHH
L A 1656PhHHi PrHHH
L A 1657PhHHHi PrHH
L A 1658PhPhHHHHH
L A 1659PhHPhHHHH
L A 1660PhHHPhHHH
L A 1661PhHHHPhHH
L A 1662HMeMeHHHH
L A 1663HMeHMeHHH
L A 1664HMeHHMeHH
L A 1665HMeCD 3HHHH
L A 1666HMeHCD 3HHH
L A 1667HMeHHCD 3HH
L A 1668HMei PrHHHH
L A 1669HMeHi PrHHH
L A 1670HMeHHi PrHH
L A 1671HMePhHHHH
L A 1672HMeHPhHHH
L A 1673HMeHHPhHH
L A 1674HCD 3MeHHHH
L A 1675HCD 3HMeHHH
L A 1676HCD 3HHMeHH
L A 1677HCD 3CD 3HHHH
L A 1678HCD 3HCD 3HHH
L A 1679HCD 3HHCD 3HH
L A 1680HCD 3i PrHHHH
L A 1681HCD 3Hi PrHHH
L A 1682HCD 3HHi PrHH
L A 1683HCD 3PhHHHH
L A 1684HCD 3HPhHHH
L A 1685HCD 3HHPhHH
L A 1686Hi PrMeHHHH
L A 1687Hi PrHMeHHH
L A 1688Hi PrHHMeHH
L A 1689Hi PrCD 3HHHH
L A 1690Hi PrHCD 3HHH
L A 1691Hi PrHHCD 3HH
L A 1692Hi Pri PrHHHH
L A 1693Hi PrHi PrHHH
L A 1694Hi PrHHi PrHH
L A 1695Hi PrPhHHHH
L A 1696Hi PrHPhHHH
L A 1697Hi PrHHPhHH
L A 1698 L A 1699 L A 1700 L A 1701 L A 1702 L A 1703
H H H H H HPh Ph Ph Ph Ph PhMe H H CD 3 H HH Me H H CD 3 HH H Me H H CD 3H H H H H HH H H H H H
L A 1704HPhi PrHHHH
L A 1705HPhHi PrHHH
L A 1706HPhHHi PrHH
L A 1707HPhPhHHHH
L A 1708HPhHPhHHH
L A 1709HPhHHPhHH
L A 1710HHMeMeHHH
L A 1711HHCD 3MeHHH
L A 1712HHi PrMeHHH
L A 1713HHPhMeHHH
L A 1714HHMeCD 3HHH
L A 1715HHCD 3CD 3HHH
L A 1716HHi PrCD 3HHH
L A 1717HHPhCD 3HHH
L A 1718HHMei PrHHH
L A 1719HHCD 3i PrHHH
L A 1720HHi Pri PrHHH
L A 1721HHPhi PrHHH
L A 1722HHMePhHHH
L A 1723HHCD 3PhHHH
L A 1724HHi PrPhHHH
L A 1725HHPhPhHHH
L A 1726HHMeHMeHH
L A 1727HHCD 3HMeHH
L A 1728HHi PrHMeHH
L A 1729HHPhHMeHH
L A 1730HHMeHCD 3HH
L A 1731HHCD 3HCD 3HH
L A 1732HHi PrHCD 3HH
L A 1733HHPhHCD 3HH
L A 1734HHMeHi PrHH
L A 1735HHCD 3Hi PrHH
L A 1736HHi PrHi PrHH
L A 1737HHPhHi PrHH
L A 1738HHMeHPhHH
L A 1739HHCD 3HPhHH
L A 1740HHi PrHPhHH
L A 1741HHPhHPhHH
L A 1742MeMeHMeHHH
L A 1743HMeMeMeHHH
L A 1744CD 3MeHMeHHH
L A 1745HMeCD 3MeHHH
L A 1746i PrMeHMeHHH
L A 1747HMei PrMeHHH
L A 1748PhMeHMeHHH
L A 1749HMePhMeHHH
L A 1750MeCD 3HCD 3HHH
L A 1751HCD 3MeCD 3HHH
L A 1752CD 3CD 3HCD 3HHH
L A 1753 L A 1754 L A 1755 L A 1756 L A 1757 L A 1758
H i Pr H Ph H MeCD 3 CD 3 CD 3 CD 3 CD 3 i PrCD 3 H i Pr H Ph HCD 3 CD 3 CD 3 CD 3 CD 3 i PrH H H H H HH H H H H HH H H H H H
L A 1759Hi PrMei PrHHH
L A 1760CD 3i PrHi PrHHH
L A 1761Hi PrCD 3i PrHHH
L A 1762i Pri PrHi PrHHH
L A 1763Hi Pri Pri PrHHH
L A 1764Phi PrHi PrHHH
L A 1765Hi PrPhi PrHHH
L A 1766MePhHPhHHH
L A 1767HPhMePhHHH
L A 1768CD 3PhHPhHHH
L A 1769HPhCD 3PhHHH
L A 1770i PrPhHPhHHH
L A 1771HPhi PrPhHHH
L A 1772PhPhHPhHHH
L A 1773HPhPhPhHHH
L A 1774 L A 1775 L A 1776 L A 1777 L A 1778 L A 1779
H Me H H H HH H Me H H HH H H Me H HH H H H Me HH H H H H MeH H H H H HH H H H H H
L A 1780CD 3HHHHHH
L A 1781HCD 3HHHHH
L A 1782HHCD 3HHHH
L A 1783HHHCD 3HHH
L A 1784HHHHCD 3HH
L A 1785i PrHHHHHH
L A 1786Hi PrHHHHH
L A 1787HHi PrHHHH
L A 1788HHHi PrHHH
L A 1789HHHHi PrHH
L A 1790PhHHHHHH
L A 1791HPhHHHHH
L A 1792HHPhHHHH
L A 1793HHHPhHHH
L A 1794HHHHPhHH
L A 1795MeMeHHHHH
L A 1796MeHMeHHHH
L A 1797MeHHMeHHH
L A 1798MeHHHMeHH
L A 1799MeCD 3HHHHH
L A 1800MeHCD 3HHHH
L A 1801MeHHCD 3HHH
L A 1802MeHHHCD 3HH
L A 1803Mei PrHHHHH
L A 1804MeHi PrHHHH
L A 1805MeHHi PrHHH
L A 1806MeHHHi PrHH
L A 1807MePhHHHHH
L A 1808 L A 1809 L A 1810 L A 1811 L A 1812 L A 1813
Me Me Me CD 3 CD 3 CD 3H H H Me H HPh H H H Me HH Ph H H H MeH H Ph H H HH H H H H HH H H H H H
L A 1814CD 3HHHMeHH
L A 1815CD 3CD 3HHHHH
L A 1816CD 3HCD 3HHHH
L A 1817CD 3HHCD 3HHH
L A 1818CD 3HHHCD 3HH
L A 1819CD 3i PrHHHHH
L A 1820CD 3Hi PrHHHH
L A 1821CD 3HHi PrHHH
L A 1822CD 3HHHi PrHH
L A 1823CD 3PhHHHHH
L A 1824CD 3HPhHHHH
L A 1825CD 3HHPhHHH
L A 1826CD 3HHHPhHH
L A 1827i PrMeHHHHH
L A 1828i PrHMeHHHH
L A 1829i PrHHMeHHH
L A 1830i PrHHHMeHH
L A 1831i PrCD 3HHHHH
L A 1832i PrHCD 3HHHH
L A 1833i PrHHCD 3HHH
L A 1834i PrHHHCD 3HH
L A 1835i Pri PrHHHHH
L A 1836i PrHi PrHHHH
L A 1837i PrHHi PrHHH
L A 1838i PrHHHi PrHH
L A 1839i PrPhHHHHH
L A 1840i PrHPhHHHH
L A 1841i PrHHPhHHH
L A 1842i PrHHHPhHH
L A 1843PhMeHHHHH
L A 1844PhHMeHHHH
L A 1845PhHHMeHHH
L A 1846PhHHHMeHH
L A 1847PhCD 3HHHHH
L A 1848PhHCD 3HHHH
L A 1849PhHHCD 3HHH
L A 1850PhHHHCD 3HH
L A 1851Phi PrHHHHH
L A 1852PhHi PrHHHH
L A 1853PhHHi PrHHH
L A 1854PhHHHi PrHH
L A 1855PhPhHHHHH
L A 1856PhHPhHHHH
L A 1857PhHHPhHHH
L A 1858PhHHHPhHH
L A 1859HMeMeHHHH
L A 1860HMeHMeHHH
L A 1861HMeHHMeHH
L A 1862HMeCD 3HHHH
L A 1863 L A 1864 L A 1865 L A 1866 L A 1867 L A 1868
H H H H H HMe Me Me Me Me MeH H i Pr H H PhCD 3 H H i Pr H HH CD 3 H H i Pr HH H H H H HH H H H H H
L A 1869HMeHPhHHH
L A 1870HMeHHPhHH
L A 1871HCD 3MeHHHH
L A 1872HCD 3HMeHHH
L A 1873HCD 3HHMeHH
L A 1874HCD 3CD 3HHHH
L A 1875HCD 3HCD 3HHH
L A 1876HCD 3HHCD 3HH
L A 1877HCD 3i PrHHHH
L A 1878HCD 3Hi PrHHH
L A 1879HCD 3HHi PrHH
L A 1880HCD 3PhHHHH
L A 1881HCD 3HPhHHH
L A 1882HCD 3HHPhHH
L A 1883Hi PrMeHHHH
L A 1884Hi PrHMeHHH
L A 1885Hi PrHHMeHH
L A 1886Hi PrCD 3HHHH
L A 1887Hi PrHCD 3HHH
L A 1888Hi PrHHCD 3HH
L A 1889Hi Pri PrHHHH
L A 1890Hi PrHi PrHHH
L A 1891Hi PrHHi PrHH
L A 1892Hi PrPhHHHH
L A 1893Hi PrHPhHHH
L A 1894Hi PrHHPhHH
L A 1895HPhMeHHHH
L A 1896HPhHMeHHH
L A 1897HPhHHMeHH
L A 1898HPhCD 3HHHH
L A 1899HPhHCD 3HHH
L A 1900HPhHHCD 3HH
L A 1901HPhi PrHHHH
L A 1902HPhHi PrHHH
L A 1903HPhHHi PrHH
L A 1904HPhPhHHHH
L A 1905HPhHPhHHH
L A 1906HPhHHPhHH
L A 1907HHMeMeHHH
L A 1908HHCD 3MeHHH
L A 1909HHi PrMeHHH
L A 1910HHPhMeHHH
L A 1911HHMeCD 3HHH
L A 1912HHCD 3CD 3HHH
L A 1913HHi PrCD 3HHH
L A 1914HHPhCD 3HHH
L A 1915HHMei PrHHH
L A 1916HHCD 3i PrHHH
L A 1917HHi Pri PrHHH
L A 1918 L A 1919 L A 1920 L A 1921 L A 1922 L A 1923
H H H H H HH H H H H HPh Me CD 3 i Pr Ph Mei Pr Ph Ph Ph Ph HH H H H H MeH H H H H HH H H H H H
L A 1924HHCD 3HMeHH
L A 1925HHi PrHMeHH
L A 1926HHPhHMeHH
L A 1927HHMeHCD 3HH
L A 1928HHCD 3HCD 3HH
L A 1929HHi PrHCD 3HH
L A 1930HHPhHCD 3HH
L A 1931HHMeHi PrHH
L A 1932HHCD 3Hi PrHH
L A 1933HHi PrHi PrHH
L A 1934HHPhHi PrHH
L A 1935HHMeHPhHH
L A 1936HHCD 3HPhHH
L A 1937HHi PrHPhHH
L A 1938HHPhHPhHH
L A 1939MeMeHMeHHH
L A 1940HMeMeMeHHH
L A 1941CD 3MeHMeHHH
L A 1942HMeCD 3MeHHH
L A 1943i PrMeHMeHHH
L A 1944HMei PrMeHHH
L A 1945PhMeHMeHHH
L A 1946HMePhMeHHH
L A 1947MeCD 3HCD 3HHH
L A 1948HCD 3MeCD 3HHH
L A 1949CD 3CD 3HCD 3HHH
L A 1950HCD 3CD 3CD 3HHH
L A 1951i PrCD 3HCD 3HHH
L A 1952HCD 3i PrCD 3HHH
L A 1953PhCD 3HCD 3HHH
L A 1954HCD 3PhCD 3HHH
L A 1955Mei PrHi PrHHH
L A 1956Hi PrMei PrHHH
L A 1957CD 3i PrHi PrHHH
L A 1958Hi PrCD 3i PrHHH
L A 1959iPri PrHi PrHHH
L A 1960Hi Pri Pri PrHHH
L A 1961Phi PrHi PrHHH
L A 1962Hi PrPhi PrHHH
L A 1963MePhHPhHHH
L A 1964HPhMePhHHH
L A 1965CD 3PhHPhHHH
L A 1966HPhCD 3PhHHH
L A 1967iPrPhHPhHHH
L A 1968HPhi PrPhHHH
L A 1969PhPhHPhHHH
L A 1970HPhPhPhHHH
L A 1971
HHHHHHH
L A 1972 L A 1973 L A 1974 L A 1975 L A 1976 L A 1977
Me H H H H CD 3H Me H H H HH H Me H H HH H H Me H HH H H H Me HH H H H H HH H H H H H
L A 1978HCD 3HHHHH
L A 1979HHCD 3HHHH
L A 1980HHHCD 3HHH
L A 1981HHHHCD 3HH
L A 1982i PrHHHHHH
L A 1983Hi PrHHHHH
L A 1984HHi PrHHHH
L A 1985HHHi PrHHH
L A 1986HHHHi PrHH
L A 1987PhHHHHHH
L A 1988HPhHHHHH
L A 1989HHPhHHHH
L A 1990HHHPhHHH
L A 1991HHHHPhHH
L A 1992MeMeHHHHH
L A 1993MeHMeHHHH
L A 1994MeHHMeHHH
L A 1995MeHHHMeHH
L A 1996MeCD 3HHHHH
L A 1997MeHCD 3HHHH
L A 1998MeHHCD 3HHH
L A 1999MeHHHCD 3HH
L A 2000Mei PrHHHHH
L A 2001MeHi PrHHHH
L A 2002MeHHi PrHHH
L A 2003MeHHHi PrHH
L A 2004MePhHHHHH
L A 2005MeHPhHHHH
L A 2006MeHHPhHHH
L A 2007MeHHHPhHH
L A 2008CD 3MeHHHHH
L A 2009CD 3HMeHHHH
L A 2010CD 3HHMeHHH
L A 2011CD 3HHHMeHH
L A 2012CD 3CD 3HHHHH
L A 2013CD 3HCD 3HHHH
L A 2014CD 3HHCD 3HHH
L A 2015CD 3HHHCD 3HH
L A 2016CD 3i PrHHHHH
L A 2017CD 3Hi PrHHHH
L A 2018CD 3HHi PrHHH
L A 2019CD 3HHHi PrHH
L A 2020CD 3PhHHHHH
L A 2021CD 3HPhHHHH
L A 2022CD 3HHPhHHH
L A 2023CD 3HHHPhHH
L A 2024i PrMeHHHHH
L A 2025i PrHMeHHHH
L A 2026i PrHHMeHHH
L A 2027 L A 2028 L A 2029 L A 2030 L A 2031 L A 2032
i Pr i Pr i Pr i Pr i Pr i PrH CD 3 H H H i PrH H CD 3 H H HH H H CD 3 H HMe H H H CD 3 HH H H H H HH H H H H H
L A 2033i PrHi PrHHHH
L A 2034i PrHHi PrHHH
L A 2035i PrHHHi PrHH
L A 2036i PrPhHHHHH
L A 2037i PrHPhHHHH
L A 2038i PrHHPhHHH
L A 2039i PrHHHPhHH
L A 2040PhMeHHHHH
L A 2041PhHMeHHHH
L A 2042PhHHMeHHH
L A 2043PhHHHMeHH
L A 2044PhCD 3HHHHH
L A 2045PhHCD 3HHHH
L A 2046PhHHCD 3HHH
L A 2047PhHHHCD 3HH
L A 2048Phi PrHHHHH
L A 2049PhHi PrHHHH
L A 2050PhHHi PrHHH
L A 2051PhHHHi PrHH
L A 2052PhPhHHHHH
L A 2053PhHPhHHHH
L A 2054PhHHPhHHH
L A 2055PhHHHPhHH
L A 2056HMeMeHHHH
L A 2057HMeHMeHHH
L A 2058HMeHHMeHH
L A 2059HMeCD 3HHHH
L A 2060HMeHCD 3HHH
L A 2061HMeHHCD 3HH
L A 2062HMei PrHHHH
L A 2063HMeHi PrHHH
L A 2064HMeHHi PrHH
L A 2065HMePhHHHH
L A 2066HMeHPhHHH
L A 2067HMeHHPhHH
L A 2068HCD 3MeHHHH
L A 2069HCD 3HMeHHH
L A 2070HCD 3HHMeHH
L A 2071HCD 3CD 3HHHH
L A 2072HCD 3HCD 3HHH
L A 2073HCD 3HHCD 3HH
L A 2074HCD 3i PrHHHH
L A 2075HCD 3Hi PrHHH
L A 2076HCD 3HHi PrHH
L A 2077HCD 3PhHHHH
L A 2078HCD 3HPhHHH
L A 2079HCD 3HHPhHH
L A 2080Hi PrMeHHHH
L A 2081Hi PrHMeHHH
L A 2082 L A 2083 L A 2084 L A 2085 L A 2086 L A 2087
H H H H H HiPr i Pr i Pr i Pr i Pr iPrH CD 3 H H i Pr HH H CD 3 H H iPrMe H H CD 3 H HH H H H H HH H H H H H
L A 2088Hi PrHHi PrHH
L A 2089Hi PrPhHHHH
L A 2090Hi PrHPhHHH
L A 2091Hi PrHHPhHH
L A 2092HPhMeHHHH
L A 2093HPhHMeHHH
L A 2094HPhHHMeHH
L A 2095HPhCD 3HHHH
L A 2096HPhHCD 3HHH
L A 2097HPhHHCD 3HH
L A 2098HPhiPrHHHH
L A 2099HPhHi PrHHH
L A 2100HPhHHi PrHH
L A 2101HPhPhHHHH
L A 2102HPhHPhHHH
L A 2103HPhHHPhHH
L A 2104HHMeMeHHH
L A 2105HHCD 3MeHHH
L A 2106HHi PrMeHHH
L A 2107HHPhMeHHH
L A 2108HHMeCD 3HHH
L A 2109HHCD 3CD 3HHH
L A 2110HHi PrCD 3HHH
L A 2111HHPhCD 3HHH
L A 2112HHMei PrHHH
L A 2113HHCD 3i PrHHH
L A 2114HHi Pri PrHHH
L A 2115HHPhi PrHHH
L A 2116HHMePhHHH
L A 2117HHCD 3PhHHH
L A 2118HHi PrPhHHH
L A 2119HHPhPhHHH
L A 2120HHMeHMeHH
L A 2121HHCD 3HMeHH
L A 2122HHi PrHMeHH
L A 2123HHPhHMeHH
L A 2124HHMeHCD 3HH
L A 2125HHCD 3HCD 3HH
L A 2126HHi PrHCD 3HH
L A 2127HHPhHCD 3HH
L A 2128HHMeHi PrHH
L A 2129HHCD 3Hi PrHH
L A 2130HHi PrHi PrHH
L A 2131HHPhHi PrHH
L A 2132HHMeHPhHH
L A 2133HHCD 3HPhHH
L A 2134HHi PrHPhHH
L A 2135HHPhHPhHH
L A 2136MeMeHMeHHH
L A 2137 L A 2138 L A 2139 L A 2140 L A 2141 L A 2142
H CD 3 H i Pr H PhMe Me Me Me Me MeMe H CD 3 H i Pr HMe Me Me Me Me MeH H H H H HH H H H H HH H H H H H
L A 2143HMePhMeHHH
L A 2144MeCD 3HCD 3HHH
L A 2145HCD 3MeCD 3HHH
L A 2146CD 3CD 3HCD 3HHH
L A 2147HCD 3CD 3CD 3HHH
L A 2148i PrCD 3HCD 3HHH
L A 2149HCD 3i PrCD 3HHH
L A 2150PhCD 3HCD 3HHH
L A 2151HCD 3PhCD 3HHH
L A 2152Mei PrHi PrHHH
L A 2153Hi PrMei PrHHH
L A 2154CD 3i PrHi PrHHH
L A 2155Hi PrCD 3i PrHHH
L A 2156iPri PrHi PrHHH
L A 2157Hi PriPri PrHHH
L A 2158Phi PrHi PrHHH
L A 2159Hi PrPhi PrHHH
L A 2160MePhHPhHHH
L A 2161HPhMePhHHH
L A 2162CD 3PhHPhHHH
L A 2163HPhCD 3PhHHH
L A 2164i PrPhHPhHHH
L A 2165HPhi PrPhHHH
L A 2166PhPhHPhHHH
L A 2167HPhPhPhHHH
L A 2168 L A 2169 L A 2170 L A 2171 L A 2172 L A 2173 L A 2174
H Me H H H H CD 3H H Me H H H HH H H Me H H HH H H H Me H HH H H H H Me HH H H H H H HH H H H H H H
L A 2175HCD 3HHHHH
L A 2176HHCD 3HHHH
L A 2177HHHCD 3HHH
L A 2178HHHHCD 3HH
L A 2179i PrHHHHHH
L A 2180Hi PrHHHHH
L A 2181HHi PrHHHH
L A 2182HHHi PrHHH
L A 2183HHHHi PrHH
L A 2184PhHHHHHH
L A 2185HPhHHHHH
L A 2186HHPhHHHH
L A 2187HHHPhHHH
L A 2188HHHHPhHH
L A 2189MeMeHHHHH
L A 2190MeHMeHHHH
L A 2191MeHHMeHHH
L A 2192 L A 2193 L A 2194 L A 2195 L A 2196 L A 2197 L A 2198
Me Me Me Me Me Me MeH CD 3 H H H i Pr HH H CD 3 H H H i PrH H H CD 3 H H HMe H H H CD 3 H HH H H H H H HH H H H H H H
L A 2199MeHHi PrHHH
L A 2200MeHHHi PrHH
L A 2201MePhHHHHH
L A 2202MeHPhHHHH
L A 2203MeHHPhHHH
L A 2204MeHHHPhHH
L A 2205CD 3MeHHHHH
L A 2206CD 3HMeHHHH
L A 2207CD 3HHMeHHH
L A 2208CD 3HHHMeHH
L A 2209CD 3CD 3HHHHH
L A 2210CD 3HCD 3HHHH
L A 2211CD 3HHCD 3HHH
L A 2212CD 3HHHCD 3HH
L A 2213CD 3i PrHHHHH
L A 2214CD 3Hi PrHHHH
L A 2215CD 3HHi PrHHH
L A 2216CD 3HHHi PrHH
L A 2217CD 3PhHHHHH
L A 2218CD 3HPhHHHH
L A 2219CD 3HHPhHHH
L A 2220CD 3HHHPhHH
L A 2221i PrMeHHHHH
L A 2222i PrHMeHHHH
L A 2223i PrHHMeHHH
L A 2224i PrHHHMeHH
L A 2225i PrCD 3HHHHH
L A 2226i PrHCD 3HHHH
L A 2227i PrHHCD 3HHH
L A 2228i PrHHHCD 3HH
L A 2229i Pri PrHHHHH
L A 2230i PrHi PrHHHH
L A 2231i PrHHi PrHHH
L A 2232i PrHHHi PrHH
L A 2233i PrPhHHHHH
L A 2234i PrHPhHHHH
L A 2235i PrHHPhHHH
L A 2236i PrHHHPhHH
L A 2237PhMeHHHHH
L A 2238PhHMeHHHH
L A 2239PhHHMeHHH
L A 2240PhHHHMeHH
L A 2241PhCD 3HHHHH
L A 2242PhHCD 3HHHH
L A 2243PhHHCD 3HHH
L A 2244PhHHHCD 3HH
L A 2245Phi PrHHHHH
L A 2246PhHi PrHHHH
L A 2247 L A 2248 L A 2249 L A 2250 L A 2251 L A 2252 L A 2253
Ph Ph Ph Ph Ph Ph HH H Ph H H H MeH H H Ph H H Mei Pr H H H Ph H HH i Pr H H H Ph HH H H H H H HH H H H H H H
L A 2254HMeHMeHHH
L A 2255HMeHHMeHH
L A 2256HMeCD 3HHHH
L A 2257HMeHCD 3HHH
L A 2258HMeHHCD 3HH
L A 2259HMei PrHHHH
L A 2260HMeHi PrHHH
L A 2261HMeHHi PrHH
L A 2262HMePhHHHH
L A 2263HMeHPhHHH
L A 2264HMeHHPhHH
L A 2265HCD 3MeHHHH
L A 2266HCD 3HMeHHH
L A 2267HCD 3HHMeHH
L A 2268HCD 3CD 3HHHH
L A 2269HCD 3HCD 3HHH
L A 2270HCD 3HHCD 3HH
L A 2271HCD 3i PrHHHH
L A 2272HCD 3Hi PrHHH
L A 2273HCD 3HHi PrHH
L A 2274HCD 3PhHHHH
L A 2275HCD 3HPhHHH
L A 2276HCD 3HHPhHH
L A 2277Hi PrMeHHHH
L A 2278Hi PrHMeHHH
L A 2279Hi PrHHMeHH
L A 2280Hi PrCD 3HHHH
L A 2281Hi PrHCD 3HHH
L A 2282Hi PrHHCD 3HH
L A 2283Hi Pri PrHHHH
L A 2284Hi PrHi PrHHH
L A 2285Hi PrHHi PrHH
L A 2286Hi PrPhHHHH
L A 2287Hi PrHPhHHH
L A 2288Hi PrHHPhHH
L A 2289HPhMeHHHH
L A 2290HPhHMeHHH
L A 2291HPhHHMeHH
L A 2292HPhCD 3HHHH
L A 2293HPhHCD 3HHH
L A 2294HPhHHCD 3HH
L A 2295HPhi PrHHHH
L A 2296HPhHi PrHHH
L A 2297HPhHHi PrHH
L A 2298HPhPhHHHH
L A 2299HPhHPhHHH
L A 2300HPhHHPhHH
L A 2301HHMeMeHHH
L A 2302 L A 2303 L A 2304 L A 2305 L A 2306 L A 2307 L A 2308
H H H H H H HH H H H H H HCD 3 i Pr Ph Me CD 3 i Pr PhMe Me Me CD 3 CD 3 CD 3 CD 3H H H H H H HH H H H H H HH H H H H H H
L A 2309HHMei PrHHH
L A 2310HHCD 3i PrHHH
L A 2311HHi Pri PrHHH
L A 2312HHPhi PrHHH
L A 2313HHMePhHHH
L A 2314HHCD 3PhHHH
L A 2315HHi PrPhHHH
L A 2316HHPhPhHHH
L A 2317HHMeHMeHH
L A 2318HHCD 3HMeHH
L A 2319HHi PrHMeHH
L A 2320HHPhHMeHH
L A 2321HHMeHCD 3HH
L A 2322HHCD 3HCD 3HH
L A 2323HHi PrHCD 3HH
L A 2324HHPhHCD 3HH
L A 2325HHMeHi PrHH
L A 2326HHCD 3Hi PrHH
L A 2327HHi PrHi PrHH
L A 2328HHPhHi PrHH
L A 2329HHMeHPhHH
L A 2330HHCD 3HPhHH
L A 2331HHi PrHPhHH
L A 2332HHPhHPhHH
L A 2333MeMeHMeHHH
L A 2334HMeMeMeHHH
L A 2335CD 3MeHMeHHH
L A 2336HMeCD 3MeHHH
L A 2337i PrMeHMeHHH
L A 2338HMei PrMeHHH
L A 2339PhMeHMeHHH
L A 2340HMePhMeHHH
L A 2341MeCD 3HCD 3HHH
L A 2342HCD 3MeCD 3HHH
L A 2343CD 3CD 3HCD 3HHH
L A 2344HCD 3CD 3CD 3HHH
L A 2345i PrCD 3HCD 3HHH
L A 2346HCD 3'PrCD 3HHH
L A 2347PhCD 3HCD 3HHH
L A 2348HCD 3PhCD 3HHH
L A 2349Mei PrHi PrHHH
L A 2350Hi PrMei PrHHH
L A 2351CD 3i PrHi PrHHH
L A 2352Hi PrCD 3i PrHHH
L A 2353i Pri PrHi PrHHH
L A 2354Hi Pr'Pri PrHHH
L A 2355Phi PrHi PrHHH
L A 2356Hi PrPhi PrHHH
L A 2357 L A 2358 L A 2359 L A 2360 L A 2361 L A 2362 L A 2363
Me H CD 3 H i Pr H PhPh Ph Ph Ph Ph Ph PhH Me H CD 3 H i Pr HPh Ph Ph Ph Ph Ph PhH H H H H H HH H H H H H HH H H H H H H
L A 2364HPhPhPhHHH
L A 2365 L A 2366 L A 2367 L A 2368 L A 2369 L A 2370
H Me H H H HH H Me H H HH H H Me H HH H H H Me HH H H H H MeH H H H H HH H H H H H
L A 2371CD 3HHHHHH
L A 2372HCD 3HHHHH
L A 2373HHCD 3HHHH
L A 2374HHHCD 3HHH
L A 2375HHHHCD 3HH
L A 2376i PrHHHHHH
L A 2377Hi PrHHHHH
L A 2378HHi PrHHHH
L A 2379HHHi PrHHH
L A 2380HHHHi PrHH
L A 2381PhHHHHHH
L A 2382HPhHHHHH
L A 2383HHPhHHHH
L A 2384HHHPhHHH
L A 2385HHHHPhHH
L A 2386MeMeHHHHH
L A 2387MeHMeHHHH
L A 2388MeHHMeHHH
L A 2389MeHHHMeHH
L A 2390MeCD 3HHHHH
L A 2391MeHCD 3HHHH
L A 2392MeHHCD 3HHH
L A 2393MeHHHCD 3HH
L A 2394Mei PrHHHHH
L A 2395MeHi PrHHHH
L A 2396MeHHi PrHHH
L A 2397MeHHHi PrHH
L A 2398MePhHHHHH
L A 2399MeHPhHHHH
L A 2400MeHHPhHHH
L A 2401MeHHHPhHH
L A 2402CD 3MeHHHHH
L A 2403CD 3HMeHHHH
L A 2404CD 3HHMeHHH
L A 2405CD 3HHHMeHH
L A 2406CD 3CD 3HHHHH
L A 2407CD 3HCD 3HHHH
L A 2408CD 3HHCD 3HHH
L A 2409CD 3HHHCD 3HH
L A 2410CD 3i PrHHHHH
L A 2411 L A 2412 L A 2413 L A 2414 L A 2415 L A 2416
CD 3 CD 3 CD 3 CD 3 CD 3 CD 3H H H Ph H Hi Pr H H H Ph HH i Pr H H H PhH H i Pr H H HH H H H H HH H H H H H
L A 2417CD 3HHHPhHH
L A 2418i PrMeHHHHH
L A 2419i PrHMeHHHH
L A 2420i PrHHMeHHH
L A 2421i PrHHHMeHH
L A 2422i PrCD 3HHHHH
L A 2423i PrHCD 3HHHH
L A 2424i PrHHCD 3HHH
L A 2425i PrHHHCD 3HH
L A 2426i Pri PrHHHHH
L A 2427i PrHi PrHHHH
L A 2428i PrHHi PrHHH
L A 2429i PrHHHi PrHH
L A 2430i PrPhHHHHH
L A 2431i PrHPhHHHH
L A 2432i PrHHPhHHH
L A 2433i PrHHHPhHH
L A 2434PhMeHHHHH
L A 2435PhHMeHHHH
L A 2436PhHHMeHHH
L A 2437PhHHHMeHH
L A 2438PhCD 3HHHHH
L A 2439PhHCD 3HHHH
L A 2440PhHHCD 3HHH
L A 2441PhHHHCD 3HH
L A 2442Phi PrHHHHH
L A 2443PhHi PrHHHH
L A 2444PhHHi PrHHH
L A 2445PhHHHi PrHH
L A 2446PhPhHHHHH
L A 2447PhHPhHHHH
L A 2448PhHHPhHHH
L A 2449PhHHHPhHH
L A 2450HMeMeHHHH
L A 2451HMeHMeHHH
L A 2452HMeHHMeHH
L A 2453HMeCD 3HHHH
L A 2454HMeHCD 3HHH
L A 2455HMeHHCD 3HH
L A 2456HMei PrHHHH
L A 2457HMeHi PrHHH
L A 2458HMeHHi PrHH
L A 2459HMePhHHHH
L A 2460HMeHPhHHH
L A 2461HMeHHPhHH
L A 2462HCD 3MeHHHH
L A 2463HCD 3HMeHHH
L A 2464HCD 3HHMeHH
L A 2465HCD 3CD 3HHHH
L A 2466 L A 2467 L A 2468 L A 2469 L A 2470 L A 2471
H H H H H HCD 3 CD 3 CD 3 CD 3 CD 3 CD 3H H i Pr H H PhCD 3 H H i Pr H HH CD 3 H H i Pr HH H H H H HH H H H H H
L A 2472HCD 3HPhHHH
L A 2473HCD 3HHPhHH
L A 2474Hi PrMeHHHH
L A 2475Hi PrHMeHHH
L A 2476Hi PrHHMeHH
L A 2477Hi PrCD 3HHHH
L A 2478Hi PrHCD 3HHH
L A 2479Hi PrHHCD 3HH
L A 2480Hi Pri PrHHHH
L A 2481Hi PrHi PrHHH
L A 2482Hi PrHHi PrHH
L A 2483Hi PrPhHHHH
L A 2484Hi PrHPhHHH
L A 2485Hi PrHHPhHH
L A 2486HPhMeHHHH
L A 2487HPhHMeHHH
L A 2488HPhHHMeHH
L A 2489HPhCD 3HHHH
L A 2490HPhHCD 3HHH
L A 2491HPhHHCD 3HH
L A 2492HPhi PrHHHH
L A 2493HPhHi PrHHH
L A 2494HPhHHi PrHH
L A 2495HPhPhHHHH
L A 2496HPhHPhHHH
L A 2497HPhHHPhHH
L A 2498HHMeMeHHH
L A 2499HHCD 3MeHHH
L A 2500HHi PrMeHHH
L A 2501HHPhMeHHH
L A 2502HHMeCD 3HHH
L A 2503HHCD 3CD 3HHH
L A 2504HHi PrCD 3HHH
L A 2505HHPhCD 3HHH
L A 2506HHMei PrHHH
L A 2507HHCD 3i PrHHH
L A 2508HHi Pri PrHHH
L A 2509HHPhi PrHHH
L A 2510HHMePhHHH
L A 2511HHCD 3PhHHH
L A 2512HHi PrPhHHH
L A 2513HHPhPhHHH
L A 2514HHMeHMeHH
L A 2515HHCD 3HMeHH
L A 2516HHi PrHMeHH
L A 2517HHPhHMeHH
L A 2518HHMeHCD 3HH
L A 2519HHCD 3HCD 3HH
L A 2520HHi PrHCD 3HH
L A 2521 L A 2522 L A 2523 L A 2524 L A 2525 L A 2526
H H H H H HH H H H H HPh Me CD 3 i Pr Ph MeH H H H H HCD 3 i Pr i Pr i Pr i Pr i PrH H H H H HH H H H H H
L A 2527HHCD 3HPhHH
L A 2528HHi PrHPhHH
L A 2529HHPhHPhHH
L A 2530MeMeHMeHHH
L A 2531HMeMeMeHHH
L A 2532CD 3MeHMeHHH
L A 2533HMeCD 3MeHHH
L A 2534i PrMeHMeHHH
L A 2535HMei PrMeHHH
L A 2536PhMeHMeHHH
L A 2537HMePhMeHHH
L A 2538MeCD 3HCD 3HHH
L A 2539HCD 3MeCD 3HHH
L A 2540CD 3CD 3HCD 3HHH
L A 2541HCD 3CD 3CD 3HHH
L A 2542i PrCD 3HCD 3HHH
L A 2543HCD 3i PrCD 3HHH
L A 2544PhCD 3HCD 3HHH
L A 2545HCD 3PhCD 3HHH
L A 2546Mei PrHi PrHHH
L A 2547Hi PrMei PrHHH
L A 2548CD 3i PrHi PrHHH
L A 2549Hi PrCD 3i PrHHH
L A 2550i Pri PrHi PrHHH
L A 2551Hi Pri Pri PrHHH
L A 2552Phi PrHi PrHHH
L A 2553Hi PrPhi PrHHH
L A 2554MePhHPhHHH
L A 2555HPhMePhHHH
L A 2556CD 3PhHPhHHH
L A 2557HPhCD 3PhHHH
L A 2558i PrPhHPhHHH
L A 2559HPhi PrPhHHH
L A 2560PhPhHPhHHH
L A 2561HPhPhPhHHH
L A 2562 L A 2563 L A 2564 L A 2565 L A 2566
H Me H H HH H Me H HH H H Me HH H H H MeH H H H HH H H H HH H H H H
L A 2567HHHHMeHH
L A 2568CD 3HHHHHH
L A 2569HCD 3HHHHH
L A 2570HHCD 3HHHH
L A 2571HHHCD 3HHH
L A 2572HHHHCD 3HH
L A 2573i PrHHHHHH
L A 2574Hi PrHHHHH
L A 2575HHi PrHHHH
L A 2576 L A 2577 L A 2578 L A 2579 L A 2580
H H Ph H HH H H Ph HH H H H Phi Pr H H H HH i Pr H H HH H H H HH H H H H
L A 2581HHHPhHHH
L A 2582HHHHPhHH
L A 2583MeMeHHHHH
L A 2584MeHMeHHHH
L A 2585MeHHMeHHH
L A 2586MeHHHMeHH
L A 2587MeCD 3HHHHH
L A 2588MeHCD 3HHHH
L A 2589MeHHCD 3HHH
L A 2590MeHHHCD 3HH
L A 2591Mei PrHHHHH
L A 2592MeHi PrHHHH
L A 2593MeHHi PrHHH
L A 2594MeHHHi PrHH
L A 2595MePhHHHHH
L A 2596MeHPhHHHH
L A 2597MeHHPhHHH
L A 2598MeHHHPhHH
L A 2599CD 3MeHHHHH
L A 2600CD 3HMeHHHH
L A 2601CD 3HHMeHHH
L A 2602CD 3HHHMeHH
L A 2603CD 3CD 3HHHHH
L A 2604CD 3HCD 3HHHH
L A 2605CD 3HHCD 3HHH
L A 2606CD 3HHHCD 3HH
L A 2607CD 3i PrHHHHH
L A 2608CD 3Hi PrHHHH
L A 2609CD 3HHi PrHHH
L A 2610CD 3HHHi PrHH
L A 2611CD 3PhHHHHH
L A 2612CD 3HPhHHHH
L A 2613CD 3HHPhHHH
L A 2614CD 3HHHPhHH
L A 2615i PrMeHHHHH
L A 2616i PrHMeHHHH
L A 2617i PrHHMeHHH
L A 2618i PrHHHMeHH
L A 2619i PrCD 3HHHHH
L A 2620i PrHCD 3HHHH
L A 2621i PrHHCD 3HHH
L A 2622i PrHHHCD 3HH
L A 2623i Pri PrHHHHH
L A 2624i PrHi PrHHHH
L A 2625i PrHHi PrHHH
L A 2626i PrHHHi PrHH
L A 2627i PrPhHHHHH
L A 2628i PrHPhHHHH
L A 2629i PrHHPhHHH
L A 2630i PrHHHPhHH
L A 2631 L A 2632 L A 2633 L A 2634 L A 2635
Ph Ph Ph Ph PhMe H H H CD 3H Me H H HH H Me H HH H H Me HH H H H HH H H H H
L A 2636PhHCD 3HHHH
L A 2637PhHHCD 3HHH
L A 2638PhHHHCD 3HH
L A 2639Phi PrHHHHH
L A 2640PhHi PrHHHH
L A 2641PhHHi PrHHH
L A 2642PhHHHi PrHH
L A 2643PhPhHHHHH
L A 2644PhHPhHHHH
L A 2645PhHHPhHHH
L A 2646PhHHHPhHH
L A 2647HMeMeHHHH
L A 2648HMeHMeHHH
L A 2649HMeHHMeHH
L A 2650HMeCD 3HHHH
L A 2651HMeHCD 3HHH
L A 2652HMeHHCD 3HH
L A 2653HMei PrHHHH
L A 2654HMeHi PrHHH
L A 2655HMeHHi PrHH
L A 2656HMePhHHHH
L A 2657HMeHPhHHH
L A 2658HMeHHPhHH
L A 2659HCD 3MeHHHH
L A 2660HCD 3HMeHHH
L A 2661HCD 3HHMeHH
L A 2662HCD 3CD 3HHHH
L A 2663HCD 3HCD 3HHH
L A 2664HCD 3HHCD 3HH
L A 2665HCD 3i PrHHHH
L A 2666HCD 3Hi PrHHH
L A 2667HCD 3HHi PrHH
L A 2668HCD 3PhHHHH
L A 2669HCD 3HPhHHH
L A 2670HCD 3HHPhHH
L A 2671Hi PrMeHHHH
L A 2672Hi PrHMeHHH
L A 2673Hi PrHHMeHH
L A 2674Hi PrCD 3HHHH
L A 2675Hi PrHCD 3HHH
L A 2676Hi PrHHCD 3HH
L A 2677Hi Pri PrHHHH
L A 2678Hi PrHi PrHHH
L A 2679Hi PrHHi PrHH
L A 2680Hi PrPhHHHH
L A 2681Hi PrHPhHHH
L A 2682Hi PrHHPhHH
L A 2683HPhMeHHHH
L A 2684HPhHMeHHH
L A 2685HPhHHMeHH
L A 2686 L A 2687 L A 2688 L A 2689 L A 2690
H H H H HPh Ph Ph Ph PhCD 3 H H i Pr HH CD 3 H H i PrH H CD 3 H HH H H H HH H H H H
L A 2691HPhHHi PrHH
L A 2692HPhPhHHHH
L A 2693HPhHPhHHH
L A 2694HPhHHPhHH
L A 2695HHMeMeHHH
L A 2696HHCD 3MeHHH
L A 2697HHi PrMeHHH
L A 2698HHPhMeHHH
L A 2699HHMeCD 3HHH
L A 2700HHCD 3CD 3HHH
L A 2701HHi PrCD 3HHH
L A 2702HHPhCD 3HHH
L A 2703HHMei PrHHH
L A 2704HHCD 3i PrHHH
L A 2705HHi Pri PrHHH
L A 2706HHPhi PrHHH
L A 2707HHMePhHHH
L A 2708HHCD 3PhHHH
L A 2709HHi PrPhHHH
L A 2710HHPhPhHHH
L A 2711HHMeHMeHH
L A 2712HHCD 3HMeHH
L A 2713HHi PrHMeHH
L A 2714HHPhHMeHH
L A 2715HHMeHCD 3HH
L A 2716HHCD 3HCD 3HH
L A 2717HHi PrHCD 3HH
L A 2718HHPhHCD 3HH
L A 2719HHMeHi PrHH
L A 2720HHCD 3Hi PrHH
L A 2721HHi PrHi PrHH
L A 2722HHPhHi PrHH
L A 2723HHMeHPhHH
L A 2724HHCD 3HPhHH
L A 2725HHi PrHPhHH
L A 2726HHPhHPhHH
L A 2727MeMeHMeHHH
L A 2728HMeMeMeHHH
L A 2729CD 3MeHMeHHH
L A 2730HMeCD 3MeHHH
L A 2731i PrMeHMeHHH
L A 2732HMei PrMeHHH
L A 2733PhMeHMeHHH
L A 2734HMePhMeHHH
L A 2735MeCD 3HCD 3HHH
L A 2736HCD 3MeCD 3HHH
L A 2737CD 3CD 3HCD 3HHH
L A 2738HCD 3CD 3CD 3HHH
L A 2739i PrCD 3HCD 3HHH
L A 2740HCD 3iPrCD 3HHH
L A 2741 L A 2742 L A 2743 L A 2744 L A 2745
Ph H Me H CD 3CD 3 CD 3 i Pr i Pr i PrH Ph H Me HCD 3 CD 3 i Pr i Pr i PrH H H H HH H H H HH H H H H
L A 2746Hi PrCD 3i PrHHH
L A 2747i Pri PrHi PrHHH
L A 2748Hi PriPri PrHHH
L A 2749Phi PrHi PrHHH
L A 2750 L A 2751 L A 2752 L A 2753 L A 2754
H Me H CD 3 Hi Pr Ph Ph Ph PhPh H Me H CD 3i Pr Ph Ph Ph PhH H H H HH H H H HH H H H H
L A 2755i PrPhHPhHHH
L A 2756HPhi PrPhHHH
L A 2757PhPhHPhHHH
L A 2758HPhPhPhHHH
FormulaC 18 H 16 N 2 SiData/restr./param.5211/0/384
MW288.42T [K]100(1)
Crystal systemTriclinicρ cald [g cm −3 ]1.341
Space groupP-1μ calcd [mm −1 ]0.159
ColorColorlessTotal reflections54823
a [Å]9.1888(8)Z4
b [Å]12.5217(11)F(000)608
c [Å]12.5428(12)T min /T max0.954
α [°]82.769(4)Cryst. Size [mm 3 ]0.28 × 0.18 × 0.15
β [°]89.062(4)R 1 [I > 2σ(I)] a0.0324
γ [°]86.121(2)wR 2 (all data) a0.0892
V [Å 3 ]1428.4(2)GOF a1.055
a R 1 = Σ||F o | − |F c ||/Σ|F o |; wR 2 = [Σ[w(F o 2 − F c 2 ) 2 ]/Σ[w(F o 2 ) 2 ]] 1/2 ; GOF = [Σw(|F o | − |F c |) 2 /(n − m)] 1/2
TABLE 2
λ max (nm)τ (μs)λ max (nm)Φ PLΦ PL
Compound@ 77 K@ 77 K@ 298 KPMMAPS
4515.14610.05—
4409.54480.04—
4642.94670.62—
———0.09—
4447.5448—0.85
4486.7452——
———0.68—
————0.87
441184470.14—

Claims as granted

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Classifications

3 codes
IPC · International Patent Classification
Section C — Chemistry; metallurgy
  • C07F15/00
Section H — Electricity
  • H10K99/00
  • H10K50/11

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⤢ drag to zoomJan 2020Jul 2020Jan 2021Jul 2021Jan 2022Jul 2022Jan 2023USPTOApplicantNon-final rejectionResponse after non-final
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2.8 y
1,014 days filing → grant
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Examiner
Andrew K Bohaty
art unit 1759 · TC 1700
Citations: 214 back · 1 forward

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