USPatent applicationPatented

Organic electroluminescent materials and devices

Granted 14 Nov 2023 · 2 office actions

Current assignee: Universal Display Corporation · originally Universal Display

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Inventors: Pierre-Luc T. Boudreault, Suman Layek, Zhiqiang Ji, Alexey Borisovich Dyatkin +1 · Examiner: Alexander C Kollias · AU 1767 · TC 1700

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Abstract

A compound comprising a ligand L A coordinated to a metal M, the ligand L A selected from the group consisting of Formula I, Formula II, and Formula III [structure] ring A is a 5- or 6-membered carbocyclic or heterocyclic ring; wherein ring A of Formula I connects to ring B at X 1 , X 2 , or X 3 to form a five-membered chelate ring with the metal; Z 1 and Z 2 are independently selected from C or N; and X 1 to X 10 are independently selected from C or N. An organic light emitting device (OLED) comprising an anode, a cathode and an organic layer disposed between the anode and the cathode, the organic layer comprising a compound selected from Formula I, Formula II, or Formula III, and a consumer product comprising the OLED.

Description

25 parts
›CROSS-REFERENCE TO RELATED APPLICATIONS

This application is a continuation of U.S. patent application Ser. No. 16/229,215, filed on Dec. 21, 2018, now allowed, which claims priority under 35 U.S.C. § 119(e) to U.S. Provisional Application No. 62/616,056, filed Jan. 11, 2018, all of which applications are incorporated herein by reference in their entireties.

›FIELD

The present invention relates to compounds for use as emitters, and devices, such as organic light emitting diodes, including the same.

›BACKGROUND

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 diodes/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 stack 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.

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

A compound comprising a ligand L A coordinated to a metal M, the ligand L A selected from the group consisting of Formula I, Formula II, and Formula III

wherein

ring A is a 5- or 6-membered carbocyclic or heterocyclic ring; wherein ring A of Formula I connects to ring B at X 1 , X 2 , or X 3 to form a five-membered chelate ring with the metal;

Z 1 and Z 2 are independently selected from C or N;

X 1 to X 10 are independently selected from C or N;

R A , R B , R C , and R D represent mono to the maximum allowable substitution, or no substitution;

each R A , R B , R C , and R D are independently hydrogen or independently a substituent selected from the group consisting of, 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; or optionally, any two adjacent substituents R A , R B , R C , or R D join to form a ring;

wherein the ligand L A is optionally linked with other ligands to comprise a tridentate, tetradentate, pentadentate, or hexadentate ligand.

An organic light emitting device (OLED) comprising an anode, a cathode and an organic layer disposed between the anode and the cathode, the organic layer comprising a compound selected from Formula I, Formula II, or Formula III.

A consumer product comprising the OLED is also disclosed.

›BRIEF DESCRIPTION OF THE DRAWINGS

FIG. 1 shows an organic light emitting device.

FIG. 2 shows an inverted organic light emitting device that does not have a separate electron transport layer.

FIG. 3 is the photoluminescence spectra of a compound of the invention in solution, 2MeTHF at room temperature and 77K, and as a solid film in PMMA, room temperature.

›DETAILED DESCRIPTION · 1 of 7

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”), 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.

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 7

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 organic vapor jet printing (OVJP). 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. A consumer product comprising an OLED that includes the compound of the present disclosure in the organic layer in the OLED is disclosed. 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, curved 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, rollable displays, foldable displays, stretchable displays, laser printers, telephones, mobile phones, tablets, phablets, personal digital assistants (PDAs), wearable devices, laptop computers, digital cameras, camcorders, viewfinders, micro-displays (displays that are less than 2 inches diagonal), 3-D displays, virtual reality or augmented reality displays, vehicles, video walls comprising multiple displays tiled together, theater or stadium screen, a light therapy device, and 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 7

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 terms “halo,” “halogen,” and “halide” are used interchangeably and refer to fluorine, chlorine, bromine, and iodine.

The term “acyl” refers to a substituted carbonyl radical (C(O)—R s ).

The term “ester” refers to a substituted oxycarbonyl (—O—C(O)—R s or —C(O)—O—R s ) radical.

The term “ether” refers to an —OR s radical.

The terms “sulfanyl” or “thio-ether” are used interchangeably and refer to a —SR s radical.

The term “sulfinyl” refers to a —S(O)—R s radical.

The term “sulfonyl” refers to a —SO 2 —R s radical.

The term “phosphino” refers to a —P(R s ) 3 radical, wherein each R s can be same or different.

The term “silyl” refers to a —Si(R s ) 3 radical, wherein each R s can be same or different.

In each of the above, R s can be hydrogen or a substituent selected from the group consisting of deuterium, halogen, alkyl, cycloalkyl, heteroalkyl, heterocycloalkyl, arylalkyl, alkoxy, aryloxy, amino, silyl, alkenyl, cycloalkenyl, heteroalkenyl, alkynyl, aryl, heteroaryl, and combination thereof. Preferred R s is selected from the group consisting of alkyl, cycloalkyl, aryl, heteroaryl, and combination thereof.

The term “alkyl” refers to and includes both straight and branched chain alkyl radicals. Preferred alkyl groups are those containing from one to fifteen carbon atoms and includes 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, and the like. Additionally, the alkyl group is optionally substituted.

The term “cycloalkyl” refers to and includes monocyclic, polycyclic, and spiro alkyl radicals. Preferred cycloalkyl groups are those containing 3 to 12 ring carbon atoms and includes cyclopropyl, cyclopentyl, cyclohexyl, bicyclo[3.1.1]heptyl, spiro[4.5]decyl, spiro[5.5]undecyl, adamantyl, and the like. Additionally, the cycloalkyl group is optionally substituted.

The terms “heteroalkyl” or “heterocycloalkyl” refer to an alkyl or a cycloalkyl radical, respectively, having at least one carbon atom replaced by a heteroatom. Optionally the at least one heteroatom is selected from O, S, N, P, B, Si and Se, preferably, O, S or N. Additionally, the heteroalkyl or heterocycloalkyl group is optionally substituted.

The term “alkenyl” refers to and includes both straight and branched chain alkene radicals. Alkenyl groups are essentially alkyl groups that include at least one carbon-carbon double bond in the alkyl chain. Cycloalkenyl groups are essentially cycloalkyl groups that include at least one carbon-carbon double bond in the cycloalkyl ring. The term “heteroalkenyl” as used herein refers to an alkenyl radical having at least one carbon atom replaced by a heteroatom. Optionally the at least one heteroatom is selected from O, S, N, P, B, Si, and Se, preferably, O, S, or N. Preferred alkenyl, cycloalkenyl, or heteroalkenyl groups are those containing two to fifteen carbon atoms. Additionally, the alkenyl, cycloalkenyl, or heteroalkenyl group is optionally substituted.

The term “alkynyl” refers to and includes both straight and branched chain alkyne radicals. Preferred alkynyl groups are those containing two to fifteen carbon atoms. Additionally, the alkynyl group is optionally substituted.

The terms “aralkyl” or “arylalkyl” are used interchangeably and refer to an alkyl group that is substituted with an aryl group. Additionally, the aralkyl group is optionally substituted.

The term “heterocyclic group” refers to and includes aromatic and non-aromatic cyclic radicals containing at least one heteroatom. Optionally the at least one heteroatom is selected from O, S, N, P, B, Si, and Se, preferably, O, S, or N. Hetero-aromatic cyclic radicals may be used interchangeably with heteroaryl. Preferred hetero-non-aromatic cyclic groups are those containing 3 to 7 ring atoms which includes at least one hetero atom, and includes cyclic amines such as morpholino, piperidino, pyrrolidino, and the like, and cyclic ethers/thio-ethers, such as tetrahydrofuran, tetrahydropyran, tetrahydrothiophene, and the like. Additionally, the heterocyclic group may be optionally substituted.

The term “aryl” refers to and includes both single-ring aromatic hydrocarbyl groups and polycyclic aromatic 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 an aromatic hydrocarbyl group, e.g., the other rings can be cycloalkyls, cycloalkenyls, aryl, heterocycles, and/or heteroaryls. Preferred aryl groups are those containing six to thirty carbon atoms, preferably six to twenty carbon atoms, more preferably six to twelve carbon atoms. Especially preferred is an aryl group having six carbons, ten carbons or twelve carbons. Suitable aryl groups include phenyl, biphenyl, triphenyl, triphenylene, tetraphenylene, naphthalene, anthracene, phenalene, phenanthrene, fluorene, pyrene, chrysene, perylene, and azulene, preferably phenyl, biphenyl, triphenyl, triphenylene, fluorene, and naphthalene. Additionally, the aryl group is optionally substituted.

The term “heteroaryl” refers to and includes both single-ring aromatic groups and polycyclic aromatic ring systems that include at least one heteroatom. The heteroatoms include, but are not limited to O, S, N, P, B, Si, and Se. In many instances, O, S, or N are the preferred heteroatoms. Hetero-single ring aromatic systems are preferably single rings with 5 or 6 ring atoms, and the ring can have from one to six heteroatoms. The hetero-polycyclic ring systems can have two or more rings in which two atoms are common to two adjoining rings (the rings are “fused”) wherein at least one of the rings is a heteroaryl, e.g., the other rings can be cycloalkyls, cycloalkenyls, aryl, heterocycles, and/or heteroaryls. The hetero-polycyclic aromatic ring systems can have from one to six heteroatoms per ring of the polycyclic aromatic ring system. Preferred heteroaryl groups are those containing three to thirty carbon atoms, preferably three to twenty carbon atoms, more preferably three to twelve carbon atoms. Suitable heteroaryl groups include 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, preferably dibenzothiophene, dibenzofuran, dibenzoselenophene, carbazole, indolocarbazole, imidazole, pyridine, triazine, benzimidazole, 1,2-azaborine, 1,3-azaborine, 1,4-azaborine, borazine, and aza-analogs thereof. Additionally, the heteroaryl group is optionally substituted.

›DETAILED DESCRIPTION · 4 of 7

Of the aryl and heteroaryl groups listed above, the groups of triphenylene, naphthalene, anthracene, dibenzothiophene, dibenzofuran, dibenzoselenophene, carbazole, indolocarbazole, imidazole, pyridine, pyrazine, pyrimidine, triazine, and benzimidazole, and the respective aza-analogs of each thereof are of particular interest.

The terms alkyl, cycloalkyl, heteroalkyl, heterocycloalkyl, alkenyl, cycloalkenyl, heteroalkenyl, alkynyl, aralkyl, heterocyclic group, aryl, and heteroaryl, as used herein, are independently unsubstituted, or independently substituted, with one or more general substituents.

In many instances, the general substituents are selected from the group consisting of deuterium, halogen, alkyl, cycloalkyl, heteroalkyl, heterocycloalkyl, arylalkyl, alkoxy, aryloxy, amino, silyl, alkenyl, cycloalkenyl, heteroalkenyl, alkynyl, aryl, heteroaryl, acyl, carboxylic acid, ether, ester, nitrile, isonitrile, sulfanyl, sulfinyl, sulfonyl, phosphino, and combinations thereof.

In some instances, the preferred general substituents are selected from the group consisting of deuterium, fluorine, alkyl, cycloalkyl, heteroalkyl, alkoxy, aryloxy, amino, silyl, alkenyl, cycloalkenyl, heteroalkenyl, aryl, heteroaryl, nitrile, isonitrile, sulfanyl, and combinations thereof.

In some instances, the preferred general substituents are selected from the group consisting of deuterium, fluorine, alkyl, cycloalkyl, alkoxy, aryloxy, amino, silyl, aryl, heteroaryl, sulfanyl, and combinations thereof.

In yet other instances, the more preferred general substituents are selected from the group consisting of deuterium, fluorine, alkyl, cycloalkyl, aryl, heteroaryl, 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 fragment 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.

As used herein, “deuterium” refers to an isotope of hydrogen. Deuterated compounds can be readily prepared using methods known in the art. For example, U.S. Pat. No. 8,557,400, Patent Pub. No. WO 2006/095951, and U.S. Pat. Application Pub. No. US 2011/0037057, which are hereby incorporated by reference in their entireties, describe the making of deuterium-substituted organometallic complexes. Further reference is made to Ming Yan, et al., Tetrahedron 2015, 71, 1425-30 and Atzrodt et al., Angew. Chem. Int. Ed. ( Reviews ) 2007, 46, 7744-65, which are incorporated by reference in their entireties, describe the deuteration of the methylene hydrogens in benzyl amines and efficient pathways to replace aromatic ring hydrogens with deuterium, respectively.

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.

We describe compounds comprising a ligand L A coordinated to a metal M. The ligand L A is selected from the group consisting of Formula I, Formula II, and Formula III

wherein

ring A is a 5- or 6-membered carbocyclic or heterocyclic ring; wherein ring A of Formula I connects to ring B at X 1 , X 2 , or X 3 to form a five-membered chelate ring with the metal;

Z 1 and Z 2 are independently selected from C or N;

X 1 to X 10 are independently selected from C or N;

R A , R B , R C , and R D represent mono to the maximum allowable substitution, or no substitution;

each R A , R B , R C , and R D are independently hydrogen or independently a substituent selected from the group consisting of, 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; or optionally, any two adjacent substituents R A , R B , R C , or R D join to form a ring;

›DETAILED DESCRIPTION · 5 of 7

wherein the ligand L A is optionally linked with other ligands to comprise a tridentate, tetradentate, pentadentate, or hexadentate ligand.

In one embodiment, the compounds with a ligand L A of Formula I, Formula II, and Formula III, will include a ligand L A where each R A , R B , R C , and R D are independently hydrogen or independently a substituent selected from the group consisting of hydrogen, deuterium, fluorine, alkyl, cycloalkyl, heteroalkyl, arylalkyl, alkoxy, aryloxy, amino, silyl, aryl, heteroaryl, and combinations thereof.

Select compounds will include a metal M selected from the group consisting of Ir, Rh, Re, Ru, Os, Pt, Au, and Cu. A more select group of metals is selected from Ir(III), Os(II), and Pt(II) with the iridium and osmium compounds being octahedral hexacoordinate and the platinum being tetracoordinate. The platinum compounds are generally in a somewhat distorted square planar geometry. Select platinum compounds will include a ring A with an optionally substituted N-heterocarbocyclic carbene ring.

In one embodiment, the compounds will include a ligand L A of Formula I, Formula II, and Formula III, where ring A is selected from the group consisting of pyridine, pyrimidine, triazine, pyrazine, imidazole, isoimidazole, pyrazole, triazole, and a N-heterocarbocyclic carbene ring, each of which is optionally substituted. Also, select compounds of interest will include a ring A that is an optionally substituted benzene or an optionally substituted naphthalene. Select platinum compounds will include a ring A with an optionally substituted N-heterocarbocyclic carbene ring and one or two optionally substituted benzene rings.

In one embodiment, the compounds will include a ligand L A of Formula I, Formula II, and Formula III, where each of the X 1 to X 10 are C, and Z is N or a carbene carbon.

In another embodiment, the compounds will include a ligand L A of Formula I, Formula II, and Formula III, where at least one of X 1 to X 10 is N, and no one 6-membered ring has more than two N.

Compounds of interest will include ligands L A where one of the following is true for each of the Formula I, Formula II, and Formula III:

for compounds with a ligand L A of Formula I, the compounds will include a ring defined in-part by X 1 , X 2 , X 3 , or X 4 that is coordinated to the metal M through a carbon, and Z is N; for compounds with a ligand L A of Formula II, the compounds will include X 9 as C, and Z as N; and for compounds with a ligand L A of Formula III, the compounds will include X 8 as C, and Z as N.

Alternative compounds of interest will include ligands L A where one of the following is true for each of the Formula I, Formula II, and Formula III:

for compounds with a ligand L A of Formula I, the compounds will include a ring defined in-part by X 1 , X 2 , X 3 , or X 4 being coordinated to the metal M through a nitrogen; for compounds with a ligand L A of Formula II, the compounds will include Z as C and X 9 being N; and for compounds with a ligand L A of Formula III, the compounds will include Z as C and X 8 being N.

Compounds of particular interest will include a ligand L A selected from the group consisting of

wherein

X 11 to X 19 are independently selected from the group consisting of C and N;

R E represents mono to the maximum allowable substitution, or no substitution;

each R E is independently hydrogen or a substituent selected from the group consisting of 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; or optionally any two adjacent substituents R E join to form a ring;

R 1 is selected from the group consisting of hydrogen, deuterium, alkyl, cycloalkyl, heteroalkyl, arylalkyl, silyl, alkenyl, cycloalkenyl, heteroalkenyl, aryl, heteroaryl, nitrile, and combinations thereof; and

X is selected from the group consisting of a direct bond, BR, NR, PR, O, S, Se, C═O, S═O, SO 2 , CRR′, SiRR′, and GeRR′; wherein R and R′ are independently selected from the group consisting of hydrogen, deuterium, halide, alkyl, cycloalkyl, heteroalkyl, arylalkyl, alkoxy, aryloxy, aryl, heteroaryl, nitrile, sulfanyl, and combinations thereof.

In many instances, the compounds of particular interest above will be further defined by having each R A , R B , R C , R D , and R E being independently hydrogen or a substituent selected from the group consisting of deuterium, fluorine, alkyl, cycloalkyl, alkoxy, aryloxy, amino, silyl, aryl, heteroaryl, acyl, carbonyl, sulfanyl, and combinations thereof; or optionally any two adjacent substituents of R A , R B , R C , R D , or R E join to form a ring. Moreover, compounds of select interest will have each of X 1 to X 16 as C with hydrogen or one or more of the substituents above. Alternatively, one of X 1 to X 4 or X 8 to X 10 is optionally N.

We also describe compounds having one or more ligands L A selected from the group consisting of

Again, select compounds with a ligand L A above will include a metal M selected from the group consisting of Ir, Rh, Re, Ru, Os, Pt, Au, and Cu. A more select group of metals is selected from Ir(III), Os(II), and Pt(II) with the iridium and osmium compounds being octahedral hexacoordinate and the platinum being tetracoordinate. The platinum compounds are generally in a somewhat distorted square planar geometry. Select platinum compounds will include a ring A with an optionally substituted N-heterocarbocyclic carbene ring.

In one embodiment, the compounds will be of a general formula of M(L A ) x (L B ) y (L C ) z , wherein L B and L C are each a bidentate ligand; and wherein x is 1, 2, or 3; y is 0, 1, or 2; z is 0, 1, or 2; and x+y+z is the oxidation state of the metal M. For platinum compounds, the compounds will be of a general formulae of M(L A ) 2 , where LA is the same or different, or M(L A ) x (L B ) y , wherein L B is a bidentate ligand, in each case the two bidentate ligands are optionally linked or connected to with a direct bond to form a tetradentate ligand.

›DETAILED DESCRIPTION · 6 of 7

In other instances, the compounds will be of the general formula M(L A ) x (L B ) y (L C ) z wherein L B and L C are each a bidentate ligand; and wherein x is 1, 2, or 3; y is 0, 1, or 2; z is 0, 1, or 2; and x+y+z is the oxidation state of the metal M.

Select compounds of the general formulae above will include a ligand L B or a ligand L C independently selected from the group consisting of

wherein

each Y 1 to Y 13 are independently selected from the group consisting of C and N;

Y′ is selected from the group consisting of B R e , N R e , P R e , O, S, Se, C═O, S═O, SO 2 , CR e R f , SiR e R f , and GeR e R f ;

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

each R a , R b , R c , R d , R e and R f is independently hydrogen or a substituent selected from the group consisting of deuterium, halide, alkyl, cycloalkyl, heteroalkyl, arylalkyl, alkoxy, aryloxy, amino, silyl, alkenyl, cycloalkenyl, heteroalkenyl, alkynyl, aryl, heteroaryl, acyl, carbonyl, carboxylic acid, ester, nitrile, isonitrile, sulfanyl, sulfinyl, sulfonyl, phosphino, and combinations thereof; or optionally, any two adjacent substituents of R a , R b , R c , or R d join to form a ring or form a multidentate ligand.

More select compounds of the general formulae above will include a ligand L B or a ligand L C independently selected from the group consisting of independently selected from the group consisting of:

We also describe compounds defined by a structure below in which one or more of ligand L A is selected from the group consisting of L A1 to LA 97 above. These select compounds are listed as follows:

a Compound Ax having the formula Ir(L Ai ) 3 ; wherein i is an integer from 1 to 97; a Compound Axx having the formula Ir(L Ai ) 2 (L Aii ); wherein i is an integer from 1 to 97, and as is an integer from 1 to 97, wherein L Ai is different from L Aii , and xx=97i+p−97), and p is an integer from 1 to 97; a Compound By having the formula Ir(L Ai )(L Bk ) 2 ; wherein y=468i+k−468; wherein i is an integer from 1 to 97, and k is an integer from 1 to 468; a Compound Cz having the formula Ir(L Ai ) 2 (L Cj ), and a Compound D L having the formula Ir(L Ai )(L Bk )(L Cj ); wherein z=1260i+j−1260, L=1260(468i+k−468)+j−1260, wherein each L Bk has the following structures:

and

wherein L C is selected from the group consisting of the following structures:

L C1 through L C1260 are based on a structure of Formula X,

in which R 1 , R 2 , and R 3 are defined as:

An organic light emitting device (OLED) comprising an anode, a cathode and an organic layer disposed between the anode and the cathode, the organic layer including a compound comprising a ligand L A coordinated to a metal M, the ligand L A selected from the group consisting of Formula I, Formula II, and Formula III

wherein

ring A is a 5- or 6-membered carbocyclic or heterocyclic ring; wherein ring A of Formula I connects to ring B at X 1 , X 2 , or X 3 to form a five-membered chelate ring with the metal;

Z 1 and Z 2 are independently selected from C or N;

X 1 to X 10 are independently selected from C or N;

R A , R B , R C , and R D represent mono to the maximum allowable substitution, or no substitution;

each R A , R B , R C , and R D are independently hydrogen or independently a substituent selected from the group consisting of, 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; or optionally, any two adjacent substituents R A , R B , R C , or R D join to form a ring;

wherein the ligand L A is optionally linked with other ligands to comprise a tridentate, tetradentate, pentadentate, or hexadentate ligand.

Again, the compounds with a ligand L A of Formula I, Formula II, and Formula III, will preferably include a ligand L A where each R A , R B , R C , and R D are independently hydrogen or independently a substituent selected from the group consisting of hydrogen, deuterium, fluorine, alkyl, cycloalkyl, heteroalkyl, arylalkyl, alkoxy, aryloxy, amino, silyl, aryl, heteroaryl, and combinations thereof.

The compounds of the invention provide emissive layers of OLEDs with a peak emission of from about 600 nm to about 850 nm, that is, from the red into the near-IR. Moreover, the lines shape of the emission tends to be more defined (less vibrational structure) than emission from compounds with corresponding benzene or dimethyl benzene coordinating groups.

The photoluminescence properties of the desired materials were obtained in both solution and as a thick film in PMMA, FIG. 3 . As shown, the compound Ir(L A ) 2 (acac′) with the ligand L A that includes a fluoranthene coordination group (Ligand 1 of the experimental) exhibits a red shifted emission compared to a compound with a corresponding phenyl (benzene) or dimethylbenzene group. Moreover, the compound Ir(L A ) 2 (acac′) exhibits an emission line shape that is relatively narrow and with some suppression of the vibrational band structure compared to the compounds with phenyl (benzene) or dimethylbenzene groups. Accordingly, the compounds of the invention offer an opportunity to provide red emission with greater color purity.

In some embodiments, the OLED has one or more characteristics selected from the group consisting of being flexible, being rollable, being foldable, being stretchable, and being curved. In some embodiments, the OLED is transparent or semi-transparent. In some embodiments, the OLED further comprises a layer comprising carbon nanotubes.

In some embodiments, the OLED further comprises a layer comprising a delayed fluorescent emitter. In some embodiments, the OLED comprises a RGB pixel arrangement or white plus color filter pixel arrangement. In some embodiments, the OLED is a mobile device, a hand held device, or a wearable device. In some embodiments, the OLED is a display panel having less than 10 inch diagonal or 50 square inch area. In some embodiments, the OLED is a display panel having at least 10 inch diagonal or 50 square inch area. In some embodiments, the OLED is a lighting panel.

›DETAILED DESCRIPTION · 7 of 7

According to another aspect, an emissive region in an OLED (e.g., the organic layer described herein) is disclosed. The emissive region comprises a first compound as described herein. In some embodiments, the first compound in the emissive region is an emissive dopant or a non-emissive dopant. In some embodiments, the emissive dopant further comprises a host, wherein the host comprises at least one selected from the group consisting of metal complex, triphenylene, carbazole, dibenzothiophene, dibenzofuran, dibenzoselenophene, aza-triphenylene, aza-carbazole, aza-dibenzothiophene, aza-dibenzofuran, and aza-dibenzoselenophene. In some embodiments, the emissive region further comprises a host, wherein the host is selected from the group consisting of:

and combinations thereof.

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 the host has no substitutions. 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. The host can be an inorganic compound. For example a Zn containing inorganic material e.g. ZnS.

In some embodiments, the 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; see, e.g., U.S. application Ser. No. 15/700,352, which is hereby incorporated by reference in its entirety), triplet-triplet annihilation, or combinations of these processes. In some embodiments, the emissive dopant can be a racemic mixture, or can be enriched in one enantiomer.

According to another aspect, a formulation comprising the compound described herein is also disclosed.

The OLED disclosed herein can be incorporated into one or more of a consumer product, an electronic component module, and a lighting panel. The organic layer can be an emissive layer and the compound can be an emissive dopant in some embodiments, while the compound can be a non-emissive dopant in other embodiments.

In yet another aspect of the present disclosure, a formulation that comprises the novel compound disclosed herein is described. 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, electron blocking material, hole blocking material, and an electron transport material, disclosed herein.

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.

Conductivity Dopants:

A charge transport layer can be doped with conductivity dopants to substantially alter its density of charge carriers, which will in turn alter its conductivity. The conductivity is increased by generating charge carriers in the matrix material, and depending on the type of dopant, a change in the Fermi level of the semiconductor may also be achieved. Hole-transporting layer can be doped by p-type conductivity dopants and n-type conductivity dopants are used in the electron-transporting layer.

Non-limiting examples of the conductivity dopants that may be used in an OLED in combination with materials disclosed herein are exemplified below together with references that disclose those materials: EP01617493, EP01968131, EP2020694, EP2684932, US20050139810, US20070160905, US20090167167, US2010288362, WO06081780, WO2009003455, WO2009008277, WO2009011327, WO2014009310, US2007252140, US2015060804, US20150123047, and US2012146012.

›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 MoO x ; a p-type semiconducting organic compound, such as 1,4,5,8,9,12-Hexaazatriphenylenehexacarbonitrile; a metal complex, and a cross-linkable compounds.

Examples of aromatic amine derivatives used in HIL or HTL include, but not limit 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. Each Ar may be unsubstituted or may be substituted by a substituent selected from the group consisting of deuterium, halogen, alkyl, cycloalkyl, heteroalkyl, heterocycloalkyl, arylalkyl, alkoxy, aryloxy, amino, silyl, alkenyl, cycloalkenyl, heteroalkenyl, alkynyl, aryl, heteroaryl, acyl, carboxylic acids, ether, 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.

Non-limiting examples of the HIL and HTL materials that may be used in an OLED in combination with materials disclosed herein are exemplified below together with references that disclose those materials: CN102702075, DE102012005215, EP01624500, EP01698613, EP01806334, EP01930964, EP01972613, EP01997799, EP02011790, EP02055700, EP02055701, EP1725079, EP2085382, EP2660300, EP650955, JP07-073529, JP2005112765, JP2007091719, JP2008021687, JP2014-009196, KR20110088898, KR20130077473, TW201139402, U.S. Ser. No. 06/517,957, US20020158242, US20030162053, US20050123751, US20060182993, US20060240279, US20070145888, US20070181874, US20070278938, US20080014464, US20080091025, US20080106190, US20080124572, US20080145707, US20080220265, US20080233434, US20080303417, US2008107919, US20090115320, US20090167161, US2009066235, US2011007385, US20110163302, US2011240968, US2011278551, US2012205642, US2013241401, US20140117329, US2014183517, U.S. Pat. Nos. 5,061,569, 5,639,914, WO05075451, WO07125714, WO08023550, WO08023759, WO2009145016, WO2010061824, WO2011075644, WO2012177006, WO2013018530, WO2013039073, WO2013087142, WO2013118812, WO2013120577, WO2013157367, WO2013175747, WO2014002873, WO2014015935, WO2014015937, WO2014030872, WO2014030921, WO2014034791, WO2014104514, WO2014157018.

›EBL · 1 of 2

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, the 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. 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. 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 other organic compounds used as host are selected from the group consisting of aromatic hydrocarbon cyclic compounds such as benzene, biphenyl, triphenyl, triphenylene, tetraphenylene, 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. Each option within each group may be unsubstituted or may be substituted by a substituent selected from the group consisting of deuterium, halogen, alkyl, cycloalkyl, heteroalkyl, heterocycloalkyl, arylalkyl, alkoxy, aryloxy, amino, silyl, alkenyl, cycloalkenyl, heteroalkenyl, alkynyl, aryl, heteroaryl, acyl, carboxylic acids, ether, 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 is selected from the group consisting of hydrogen, deuterium, halogen, alkyl, cycloalkyl, heteroalkyl, heterocycloalkyl, arylalkyl, alkoxy, aryloxy, amino, silyl, alkenyl, cycloalkenyl, heteroalkenyl, alkynyl, aryl, heteroaryl, acyl, carboxylic acids, ether, ester, nitrile, isonitrile, sulfanyl, sulfinyl, sulfonyl, phosphino, and combinations thereof, and 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. X 101 to X 108 are independently selected from C (including CH) or N. Z 101 and Z 102 are independently selected from NR 101 , O, or S.

Non-limiting examples of the host materials that may be used in an OLED in combination with materials disclosed herein are exemplified below together with references that disclose those materials: EP2034538, EP2034538A, EP2757608, JP2007254297, KR20100079458, KR20120088644, KR20120129733, KR20130115564, TW201329200, US20030175553, US20050238919, US20060280965, US20090017330, US20090030202, US20090167162, US20090302743, US20090309488, US20100012931, US20100084966, US20100187984, US2010187984, US2012075273, US2012126221, US2013009543, US2013105787, US2013175519, US2014001446, US20140183503, US20140225088, US2014034914, U.S. Pat. No. 7,154,114, WO2001039234, WO2004093207, WO2005014551, WO2005089025, WO2006072002, WO2006114966, WO2007063754, WO2008056746, WO2009003898, WO2009021126, WO2009063833, WO2009066778, WO2009066779, WO2009086028, WO2010056066, WO2010107244, WO2011081423, WO2011081431, WO2011086863, WO2012128298, WO2012133644, WO2012133649, WO2013024872, WO2013035275, WO2013081315, WO2013191404, WO2014142472, US20170263869, US20160163995, U.S. Pat. No. 9,466,803,

Additional Emitters:

One or more additional emitter dopants may be used in conjunction with the compound of the present disclosure. Examples of the additional emitter dopants are not particularly limited, and any compounds may be used as long as the compounds are typically used as emitter materials. Examples of suitable emitter materials include, but are not limited to, compounds which 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.

›EBL · 2 of 2

Non-limiting examples of the emitter materials that may be used in an OLED in combination with materials disclosed herein are exemplified below together with references that disclose those materials: CN103694277, CN1696137, EB01238981, EP01239526, EP01961743, EP1239526, EP1244155, EP1642951, EP1647554, EP1841834, EP1841834B, EP2062907, EP2730583, JP2012074444, JP2013110263, JP4478555, KR1020090133652, KR20120032054, KR20130043460, TW201332980, U.S. Ser. No. 06/699,599, U.S. Ser. No. 06/916,554, US20010019782, US20020034656, US20030068526, US20030072964, US20030138657, US20050123788, US20050244673, US2005123791, US2005260449, US20060008670, US20060065890, US20060127696, US20060134459, US20060134462, US20060202194, US20060251923, US20070034863, US20070087321, US20070103060, US20070111026, US20070190359, US20070231600, US2007034863, US2007104979, US2007104980, US2007138437, US2007224450, US2007278936, US20080020237, US20080233410, US20080261076, US20080297033, US200805851, US2008161567, US2008210930, US20090039776, US20090108737, US20090115322, US20090179555, US2009085476, US2009104472, US20100090591, US20100148663, US20100244004, US20100295032, US2010102716, US2010105902, US2010244004, US2010270916, US20110057559, US20110108822, US20110204333, US2011215710, US2011227049, US2011285275, US2012292601, US20130146848, US2013033172, US2013165653, US2013181190, US2013334521, US20140246656, US2014103305, U.S. Pat. Nos. 6,303,238, 6,413,656, 6,653,654, 6,670,645, 6,687,266, 6,835,469, 6,921,915, 7,279,704, 7,332,232, 7,378,162, 7,534,505, 7,675,228, 7,728,137, 7,740,957, 7,759,489, 7,951,947, 8,067,099, 8,592,586, 8,871,361, WO06081973, WO06121811, WO07018067, WO07108362, WO07115970, WO07115981, WO08035571, WO2002015645, WO2003040257, WO2005019373, WO2006056418, WO2008054584, WO2008078800, WO2008096609, WO2008101842, WO2009000673, WO2009050281, WO2009100991, WO2010028151, WO2010054731, WO2010086089, WO2010118029, WO2011044988, WO2011051404, WO2011107491, WO2012020327, WO2012163471, WO2013094620, WO2013107487, WO2013174471, WO2014007565, WO2014008982, WO2014023377, WO2014024131, WO2014031977, WO2014038456, WO2014112450.

›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 (further from the vacuum level) and/or higher triplet energy than the emitter closest to the HBL interface. In some embodiments, the HBL material has a lower HOMO (further from the vacuum level) and/or higher triplet energy than one or more of the hosts 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, halogen, alkyl, cycloalkyl, heteroalkyl, heterocycloalkyl, arylalkyl, alkoxy, aryloxy, amino, silyl, alkenyl, cycloalkenyl, heteroalkenyl, alkynyl, aryl, heteroaryl, acyl, carboxylic acids, ether, 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 contains, but not limit 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.

Non-limiting examples of the ETL materials that may be used in an OLED in combination with materials disclosed herein are exemplified below together with references that disclose those materials: CN103508940, EP01602648, EP01734038, EP01956007, JP2004-022334, JP2005149918, JP2005-268199, KR0117693, KR20130108183, US20040036077, US20070104977, US2007018155, US20090101870, US20090115316, US20090140637, US20090179554, US2009218940, US2010108990, US2011156017, US2011210320, US2012193612, US2012214993, US2014014925, US2014014927, US20140284580, U.S. Pat. Nos. 6,656,612, 8,415,031, WO2003060956, WO2007111263, WO2009148269, WO2010067894, WO2010072300, WO2011074770, WO2011105373, WO2013079217, WO2013145667, WO2013180376, WO2014104499, WO2014104535,

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. may be undeuterated, partially deuterated, and fully deuterated versions thereof. Similarly, classes of substituents such as, without limitation, alkyl, aryl, cycloalkyl, heteroaryl, etc. also may be undeuterated, partially deuterated, and fully deuterated versions thereof.

›EXPERIMENTAL

Metal compounds that include a ligand L A can be prepared as follows. A schematic representation for a synthetic preparation of a ligand L A is indicated below. Select derivatives to the fluoranthene group shown below, which include one or more substituents as claimed and described herein, can be prepared by methods well known to persons of ordinary skill in the art with the synthetic knowledge and direction provided by the reaction scheme.

›STEP 1. Synthesis of 9-methoxy-7-methylfluoranthene (3)

1,8-dibromonaphthalene (50 g, 175 mmol) and (4-methoxy-2-methylphenyl)boronic acid (29.0 g, 175 mmol) was added to a mixture of DMF (1000 ml) and DBU (78 ml, 525 mmol), and the mixture is degassed with bubbling nitrogen for 30 min. Tricyclohexylphosphane (17.31 g, 52.5 mmol) was added and degassing continued for 10 min. Pd 2 (dba) 3 (20.01 g, 21.86 mmol) was added and the reaction mixture heated to an internal temperature of 140° C. which was maintained for 20 h. The reaction mixture was then allowed to cool to room temperature. The reaction mixture was decanted and the vessel washed with methylene chloride (DCM) (2×500 ml). The DMF was removed under reduced pressure to give a dark residue. The DCM washes were added to the residue and washed with brine (3×400 mL). The DCM layer was concentrated under reduced pressure onto silica (120 g). The crude product was purified by column chromatography (DCM in heptane, 2CV heptane, 10 CV 0-20% DCM, 10CV 20-25% DCM) to yield the product as a yellow solid (33.7 g), yield of 54%

›STEP 2. Synthesis of 10-methylfluoranthen-8-ol (4)

In a 2 L three-necked flask equipped with a thermometer and suba-seal, a solution of 9-methoxy-7-methylfluoranthene (30.4 g, 123 mmol) in DCM is prepared (726 ml) and cooled to −78° C. (dry ice/acetone). Boron tribromide 1M in DCM (309 ml, 309 mmol) was added dropwise via cannula. The flask was then removed from cooling and allowed to warm to room temperature and stir for 3 h. The reaction mixture cooled to 0° C. in an ice/water bath and quenched by dropwise addition of sat AQ NaHCO 3 (500 ml). Water was added to the mixture and the layers separated. The DCM layer was concentrated then residual water was removed via azeotrope with toluene (200 ml×3) to give the title compound as a yellow solid (32 g, >100%, contains some inorganics/toluene.

›STEP 3. Synthesis of 10-methylfluoranthen-8-yl Trifluoromethanesulfonate (5)

A solution of 10-methylfluoranthen-8-ol (32 g, 121 mmol) and triethylamine (50.4 ml, 362 mmol) in DCM (709 ml) was cooled to 0° C. (ice/water). Trifluoromethanesulfonic anhydride (40.5 ml, 241 mmol) was added slowly via syringe and the reaction mixture was allowed to warm to room temperature over 2 h. Mixture quenched by slow addition of sat AQ NaHCO 3 (400 ml) then the layers separated. The aqueous was washed with DCM (200 ml×3). The combined organics were dried over Na 2 SO 4 , filtered and concentrated onto silica gel (250 ml). Purification by dry-flash chromatography (300 ml silica, eluting with 1:3 DCM in heptane then 1:1) yielded the title compound as a yellow solid (40.1 g, 90%).

›STEP 4. Synthesis of 4,4,5,5-tetramethyl-2-(10-methylfluoranthen-8-yl)-1,3,2-dioxaborolane (6)

In a 2 L, three-necked flask equipped with condenser and suba-seal, a solution of 10-methylfluoranthen-8-yl trifluoromethanesulfonate (40.1 g, 110 mmol), 4,4,5,5-tetramethyl-1,3,2-dioxaborolane (47.9 ml, 330 mmol) and anhydrous triethylamine (88 ml, 660 mmol) in 1,4-dioxane (647 ml) was degassed with bubbling nitrogen for 15 min. Pd(dppf)Cl 2 ·CH 2 Cl 2 (4.48 g, 5.50 mmol) was added, suba-seal replaced with a stopper, and the reaction mixture heated at 95° C. for 5.5 hours. The reaction mixture was allowed to cool to room temperature overnight. The mixture was cooled in an ice/water bath and quenched by dropwise addition of IPA (20-30 ml) followed by slow addition of sat. AQ NH 4 Cl solution (50 mL). The mixture was partitioned between water (200 mL) and 2-MeTHF (250 mL). The organics were dried over MgSO 4 , filtered and concentrated to give a dark residue. The residue was dissolved in DCM and concentrated onto silica (200 g). Purification by dry-flash chromatography (200 ml silica, fractions of 200 mL, eluent DCM in Heptane, 1:4, 1:2, then 1:1) yielded the title compound as a yellow solid (30.9 g).

›STEP 5. Synthesis of 6-chloro-1-(10-methylfluoranthen-8-yl)isoquinoline (8)

A solution/suspension of 4,4,5,5-tetramethyl-2-(10-methylfluoranthen-8-yl)-1,3,2-dioxaborolane (26.6 g, 78 mmol), 1,6-dichloroisoquinoline (14 g, 70.7 mmol) and sodium carbonate (18.73 g, 177 mmol) in DME (471 ml) and water (118 ml) was degassed with bubbling nitrogen for 20 min. Tetrakis(triphenylphosphine)palladium (2.451 g, 2.121 mmol) was added and degassing continued for 5 mins. The reaction mixture was heated at 105° C. (reflux) for 8 h. The mixture was allowed to cool overnight. The reaction mixture was filtered and the remaining solids in the flask were washed out with methanol (200-300 ml). The filter cake was washed with water (200 ml), methanol (200 ml), water (200 ml), and then methanol (200 ml). The solids were dried under air for 30 min then under vacuum over the weekend to yield the title compound as a yellow solid (23.63 g, 88%).

›STEP 6. Synthesis of 6-isobutyl-1-(10-methylfluoranthen-8-yl)isoquinoline

6-chloro-1-(10-methylfluoranthen-8-yl)isoquinoline (8 g, 21.17 mmol), palladium acetate (0.238 g, 1.059 mmol) and dicyclohexyl(2′,6′-dimethoxy-[1,1′-biphenyl]-2-yl)phosphane (0.869 g, 2.117 mmol) were added and the flask flushed with a vacuum/nitrogen purge (×3). isobutylzinc(II) bromide 0.5M in THF (85 ml, 42.3 mmol) was added via syringe. The flask was equipped with a condenser then placed under nitrogen with vacuum/nitrogen purge (×3). The reaction mixture was heated at reflux (70° C.) for 1 h. The reaction mixture was allowed to cool to room temperature before quenching by addition of sat. AQ NH 4 Cl (5 mL). The mixture was concentrated under reduced pressure giving a dark residue. The residue was taken up in DCM (200 ml) then concentrated onto silica (90 g). Purification by column chromatography (Isolera, 340 g Ultra, 0-75% EtOAc in heptane over 15CV) yielded a yellow solid. Purification by reverse phase chromatography (Isolera, 400 g C18 SNAP, Eluent {MeCN:THF 1:1} in water+0.1% NH 3 , 45% to 100% over 12 CV) yielded a yellow solid. The solid was taken up in DCM before dry loading on silica (30 g). Purification by chromatography (Isolera, 340 g Ultra, 0-75% EtOAc in heptane over 15CV) yielded the title compound as a yellow solid (7.5 g, 67%).

›STEP 7. Synthesis of Iridium-Chloro Bridged Dimer and Ir(LA) 2 (acac′) Complex

A mixture of 6-isobutyl-1-(10-methylfluoranthen-8-yl)isoquinoline (1.696 g, 4.25 mmol) in triethylphosphate (10 ml) was sparged for ten minutes with nitrogen. Then iridium(III) chloride hydrate (0.611 g, 1.930 mmol) was added to it. The reaction mixture was heated at 125° C. for 24 hours. 1 H NMR showed a complex mixture of products peaks. The reaction was stopped and it was used in the following step below.

To the above mixture in triethylphosphate (10 ml) were added methanol (10 ml), potassium carbonate (0.800 g, 5.79 mmol) and 3,7-diethylnonane-4,6-dione (0.820 g, 3.86 mmol). The reaction mixture was stirred at room temperature in the dark overnight. NMR showed 100% conversion of dimer, with about 4.7:1 of the two major isomers. Water (20 mL) was added to the reaction mixture. The solid was filtered and washed by water (2 mL×3) and methanol (2 mL×3), then purified by flash column (6λ80 g column, DCM/heptanes 30%). Selected fractions were checked by LC and the pure fractions were combined to give 70 mg of the target compound.

It is understood that the various embodiments described herein are by way of example only, and are not intended to limit the scope of the invention. For example, many of the materials and structures described herein may be substituted with other materials and structures without deviating from the spirit of the invention. The present invention as claimed may therefore include variations from the particular examples and preferred embodiments described herein, as will be apparent to one of skill in the art. It is understood that various theories as to why the invention works are not intended to be limiting.

›Tables in the description — 1
wherein R D1 to R D21 has the following structures:
LigandR 1R 2R 3
L C1R D1R D1H
L C2R D2R D2H
L C3R D3R D3H
L C4R D4R D4H
L C5R D5R D5H
L C6R D6R D6H
L C7R D7R D7H
L C8R D8R D8H
L C9R D9R D9H
L C10R D10R D10H
L C11R D11R D11H
L C12R D12R D12H
L C13R D13R D13H
L C14R D14R D14H
L C15R D15R D15H
L C16R D16R D16H
L C17R D17R D17H
L C18R D18R D18H
L C19R D19R D19H
L C20R D20R D20H
L C21R D21R D21H
L C22R D22R D22H
L C23R D23R D23H
L C24R D24R D24H
L C25R D25R D25H
L C26R D26R D26H
L C27R D27R D27H
L C28R D28R D28H
L C29R D29R D29H
L C30R D30R D30H
L C31R D31R D31H
L C32R D32R D32H
L C33R D33R D33H
L C34R D34R D34H
L C35R D35R D35H
L C36R D40R D40H
L C37R D41R D41H
L C38R D42R D42H
L C39R D64R D64H
L C40R D66R D66H
L C41R D68R D68H
L C42R D76R D76H
L C43R D1R D2H
L C44R D1R D3H
L C45R D1R D4H
L C46R D1R D5H
L C47R D1R D6H
L C48R D1R D7H
L C49R D1R D8H
L C50R D1R D9H
L C51R D1R D10H
L C52R D1R D11H
L C53R D1R D12H
L C54R D1R D13H
L C55R D1R D14H
L C56R D1R D15H
L C57R D1R D16H
L C58R D1R D17H
L C59R D1R D18H
L C60R D1R D19H
L C61R D1R D20H
L C62R D1R D21H
L C63R D1R D22H
L C64R D1R D23H
L C65R D1R D24H
L C66R D1R D25H
L C67R D1R D26H
L C68R D1R D27H
L C69R D1R D28H
L C70R D1R D29H
L C71R D1R D30H
L C72R D1R D31H
L C73R D1R D32H
L C74R D1R D33H
L C75R D1R D34H
L C76R D1R D35H
L C77R D1R D40H
L C78R D1R D41H
L C79R D1R D42H
L C80R D1R D64H
L C81R D1R D66H
L C82R D1R D68H
L C83R D1R D76H
L C84R D2R D1H
L C85R D2R D3H
L C86R D2R D4H
L C87R D2R D5H
L C88R D2R D6H
L C89R D2R D7H
L C90R D2R D8H
L C91R D2R D9H
L C92R D2R D10H
L C93R D2R D11H
L C94R D2R D12H
L C95R D2R D13H
L C96R D2R D14H
L C97R D2R D15H
L C98R D2R D16H
L C99R D2R D17H
L C100R D2R D18H
L C101R D2R D19H
L C102R D2R D20H
L C103R D2R D21H
L C104R D2R D22H
L C105R D2R D23H
L C106R D2R D24H
L C107R D2R D25H
L C108R D2R D26H
L C109R D2R D27H
L C110R D2R D28H
L C111R D2R D29H
L C112R D2R D30H
L C113R D2R D31H
L C114R D2R D32H
L C115R D2R D33H
L C116R D2R D34H
L C117R D2R D35H
L C118R D2R D40H
L C119R D2R D41H
L C120R D2R D42H
L C121R D2R D64H
L C122R D2R D66H
L C123R D2R D68H
L C124R D2R D76H
L C125R D3R D4H
L C126R D3R D5H
L C127R D3R D6H
L C128R D3R D7H
L C129R D3R D8H
L C130R D3R D9H
L C131R D3R D10H
L C132R D3R D11H
L C133R D3R D12H
L C134R D3R D13H
L C135R D3R D14H
L C136R D3R D15H
L C137R D3R D16H
L C138R D3R D17H
L C139R D3R D18H
L C140R D3R D19H
L C141R D3R D20H
L C142R D3R D21H
L C143R D3R D22H
L C144R D3R D23H
L C145R D3R D24H
L C146R D3R D25H
L C147R D3R D26H
L C148R D3R D27H
L C149R D3R D28H
L C150R D3R D29H
L C151R D3R D30H
L C152R D3R D31H
L C153R D3R D32H
L C154R D3R D33H
L C155R D3R D34H
L C156R D3R D35H
L C157R D3R D40H
L C158R D3R D41H
L C159R D3R D42H
L C160R D3R D64H
L C161R D3R D66H
L C162R D3R D68H
L C163R D3R D76H
L C164R D4R D5H
L C165R D4R D6H
L C166R D4R D7H
L C167R D4R D8H
L C168R D4R D9H
L C169R D4R D10H
L C170R D4R D11H
L C171R D4R D12H
L C172R D4R D13H
L C173R D4R D14H
L C174R D4R D15H
L C175R D4R D16H
L C176R D4R D17H
L C177R D4R D18H
L C178R D4R D19H
L C179R D4R D20H
L C180R D4R D21H
L C181R D4R D22H
L C182R D4R D23H
L C183R D4R D24H
L C184R D4R D25H
L C185R D4R D26H
L C186R D4R D27H
L C187R D4R D28H
L C188R D4R D29H
L C189R D4R D30H
L C190R D4R D31H
L C191R D4R D32H
L C192R D4R D33H
L C193R D4R D34H
L C194R D4R D35H
L C195R D4R D40H
L C196R D4R D41H
L C197R D4R D42H
L C198R D4R D64H
L C199R D4R D66H
L C200R D4R D68H
L C201R D4R D76H
L C202R D4R D1H
L C203R D7R D5H
L C204R D7R D6H
L C205R D7R D8H
L C206R D7R D9H
L C207R D7R D10H
L C208R D7R D11H
L C209R D7R D12H
L C210R D7R D13H
L C211R D7R D14H
L C212R D7R D15H
L C213R D7R D16H
L C214R D7R D17H
L C215R D7R D18H
L C216R D7R D19H
L C217R D7R D20H
L C218R D7R D21H
L C219R D7R D22H
L C220R D7R D23H
L C221R D7R D24H
L C222R D7R D25H
L C223R D7R D26H
L C224R D7R D27H
L C225R D7R D28H
L C226R D7R D29H
L C227R D7R D30H
L C228R D7R D31H
L C229R D7R D32H
L C230R D7R D33H
L C231R D7R D34H
L C232R D7R D35H
L C233R D7R D40H
L C234R D7R D41H
L C235R D7R D42H
L C236R D7R D64H
L C237R D7R D66H
L C238R D7R D68H
L C239R D7R D76H
L C240R D8R D5H
L C241R D8R D6H
L C242R D8R D9H
L C243R D8R D10H
L C244R D8R D11H
L C245R D8R D12H
L C246R D8R D13H
L C247R D8R D14H
L C248R D8R D15H
L C249R D8R D16H
L C250R D8R D17H
L C251R D8R D18H
L C252R D8R D19H
L C253R D8R D20H
L C254R D8R D21H
L C255R D8R D22H
L C256R D8R D23H
L C257R D8R D24H
L C258R D8R D25H
L C259R D8R D26H
L C260R D8R D27H
L C261R D8R D28H
L C262R D8R D29H
L C263R D8R D30H
L C264R D8R D31H
L C265R D8R D32H
L C266R D8R D33H
L C267R D8R D34H
L C268R D8R D35H
L C269R D8R D40H
L C270R D8R D41H
L C271R D8R D42H
L C272R D8R D64H
L C273R D8R D66H
L C274R D8R D68H
L C275R D8R D76H
L C276R D11R D5H
L C277R D11R D6H
L C278R D11R D9H
L C279R D11R D10H
L C280R D11R D12H
L C281R D11R D13H
L C282R D11R D14H
L C283R D11R D15H
L C284R D11R D16H
L C285R D11R D17H
L C286R D11R D18H
L C287R D11R D19H
L C288R D11R D20H
L C289R D11R D21H
L C290R D11R D22H
L C291R D11R D23H
L C292R D11R D24H
L C293R D11R D25H
L C294R D11R D26H
L C295R D11R D27H
L C296R D11R D28H
L C297R D11R D29H
L C298R D11R D30H
L C299R D11R D31H
L C300R D11R D32H
L C301R D11R D33H
L C302R D11R D34H
L C303R D11R D35H
L C304R D11R D40H
L C305R D11R D41H
L C306R D11R D42H
L C307R D11R D64H
L C308R D11R D66H
L C309R D11R D68H
L C310R D11R D76H
L C311R D13R D5H
L C312R D13R D6H
L C313R D13R D9H
L C314R D13R D10H
L C315R D13R D12H
L C316R D13R D14H
L C317R D13R D15H
L C318R D13R D16H
L C319R D13R D17H
L C320R D13R D18H
L C321R D13R D19H
L C322R D13R D20H
L C323R D13R D21H
L C324R D13R D22H
L C325R D13R D23H
L C326R D13R D24H
L C327R D13R D25H
L C328R D13R D26H
L C329R D13R D27H
L C330R D13R D28H
L C331R D13R D29H
L C332R D13R D30H
L C333R D13R D31H
L C334R D13R D32H
L C335R D13R D33H
L C336R D13R D34H
L C337R D13R D35H
L C338R D13R D40H
L C339R D13R D41H
L C340R D13R D42H
L C341R D13R D64H
L C342R D13R D66H
L C343R D13R D68H
L C344R D13R D76H
L C345R D14R D5H
L C346R D14R D6H
L C347R D14R D9H
L C348R D14R D10H
L C349R D14R D12H
L C350R D14R D15H
L C351R D14R D16H
L C352R D14R D17H
L C353R D14R D18H
L C354R D14R D19H
L C355R D14R D20H
L C356R D14R D21H
L C357R D14R D22H
L C358R D14R D23H
L C359R D14R D24H
L C360R D14R D25H
L C361R D14R D26H
L C362R D14R D27H
L C363R D14R D28H
L C364R D14R D29H
L C365R D14R D30H
L C366R D14R D31H
L C367R D14R D32H
L C368R D14R D33H
L C369R D14R D34H
L C370R D14R D35H
L C371R D14R D40H
L C372R D14R D41H
L C373R D14R D42H
L C374R D14R D64H
L C375R D14R D66H
L C376R D14R D68H
L C377R D14R D76H
L C378R D22R D5H
L C379R D22R D6H
L C380R D22R D9H
L C381R D22R D10H
L C382R D22R D12H
L C383R D22R D15H
L C384R D22R D16H
L C385R D22R D17H
L C386R D22R D18H
L C387R D22R D19H
L C388R D22R D20H
L C389R D22R D21H
L C390R D22R D23H
L C391R D22R D24H
L C392R D22R D25H
L C393R D22R D26H
L C394R D22R D27H
L C395R D22R D28H
L C396R D22R D29H
L C397R D22R D30H
L C398R D22R D31H
L C399R D22R D32H
L C400R D22R D33H
L C401R D22R D34H
L C402R D22R D35H
L C403R D22R D40H
L C404R D22R D41H
L C405R D22R D42H
L C406R D22R D64H
L C407R D22R D66H
L C408R D22R D68H
L C409R D22R D76H
L C410R D26R D5H
L C411R D26R D6H
L C412R D26R D9H
L C413R D26R D10H
L C414R D26R D12H
L C415R D26R D15H
L C416R D26R D16H
L C417R D26R D17H
L C418R D26R D18H
L C419R D26R D19H
L C420R D26R D20H
L C421R D26R D21H
L C422R D26R D23H
L C423R D26R D24H
L C424R D26R D25H
L C425R D26R D27H
L C426R D26R D28H
L C427R D26R D29H
L C428R D26R D30H
L C429R D26R D31H
L C430R D26R D32H
L C431R D26R D33H
L C432R D26R D34H
L C433R D26R D35H
L C434R D26R D40H
L C435R D26R D41H
L C436R D26R D42H
L C437R D26R D64H
L C438R D26R D66H
L C439R D26R D68H
L C440R D26R D76H
L C441R D35R D5H
L C442R D35R D6H
L C443R D35R D9H
L C444R D35R D10H
L C445R D35R D12H
L C446R D35R D15H
L C447R D35R D16H
L C448R D35R D17H
L C449R D35R D18H
L C450R D35R D19H
L C451R D35R D20H
L C452R D35R D21H
L C453R D35R D23H
L C454R D35R D24H
L C455R D35R D25H
L C456R D35R D27H
L C457R D35R D28H
L C458R D35R D29H
L C459R D35R D30H
L C460R D35R D31H
L C461R D35R D32H
L C462R D35R D33H
L C463R D35R D34H
L C464R D35R D40H
L C465R D35R D41H
L C466R D35R D42H
L C467R D35R D64H
L C468R D35R D66H
L C469R D35R D68H
L C470R D35R D76H
L C471R D40R D5H
L C472R D40R D6H
L C473R D40R D9H
L C474R D40R D10H
L C475R D40R D12H
L C476R D40R D15H
L C477R D40R D16H
L C478R D40R D17H
L C479R D40R D18H
L C480R D40R D19H
L C481R D40R D20H
L C482R D40R D21H
L C483R D40R D23H
L C484R D40R D24H
L C485R D40R D25H
L C486R D40R D27H
L C487R D40R D28H
L C488R D40R D29H
L C489R D40R D30H
L C490R D40R D31H
L C491R D40R D32H
L C492R D40R D33H
L C493R D40R D34H
L C494R D40R D41H
L C495R D40R D42H
L C496R D40R D64H
L C497R D40R D66H
L C498R D40R D68H
L C499R D40R D76H
L C500R D41R D5H
L C501R D41R D6H
L C502R D41R D9H
L C503R D41R D10H
L C504R D41R D12H
L C505R D41R D15H
L C506R D41R D16H
L C507R D41R D17H
L C508R D41R D18H
L C509R D41R D19H
L C510R D41R D20H
L C511R D41R D21H
L C512R D41R D23H
L C513R D41R D24H
L C514R D41R D25H
L C515R D41R D27H
L C516R D41R D28H
L C517R D41R D29H
L C518R D41R D30H
L C519R D41R D31H
L C520R D41R D32H
L C521R D41R D33H
L C522R D41R D34H
L C523R D41R D42H
L C524R D41R D64H
L C525R D41R D66H
L C526R D41R D68H
L C527R D41R D76H
L C528R D64R D5H
L C529R D64R D6H
L C530R D64R D9H
L C531R D64R D10H
L C532R D64R D12H
L C533R D64R D15H
L C534R D64R D16H
L C535R D64R D17H
L C536R D64R D18H
L C537R D64R D19H
L C538R D64R D20H
L C539R D64R D21H
L C540R D64R D23H
L C541R D64R D24H
L C542R D64R D25H
L C543R D64R D27H
L C544R D64R D28H
L C545R D64R D29H
L C546R D64R D30H
L C547R D64R D31H
L C548R D64R D32H
L C549R D64R D33H
L C550R D64R D34H
L C551R D64R D42H
L C552R D64R D64H
L C553R D64R D66H
L C554R D64R D68H
L C555R D64R D76H
L C556R D66R D5H
L C557R D66R D6H
L C558R D66R D9H
L C559R D66R D10H
L C560R D66R D12H
L C561R D66R D15H
L C562R D66R D16H
L C563R D66R D17H
L C564R D66R D18H
L C565R D66R D19H
L C566R D66R D20H
L C567R D66R D21H
L C568R D66R D23H
L C569R D66R D24H
L C570R D66R D25H
L C571R D66R D27H
L C572R D66R D28H
L C573R D66R D29H
L C574R D66R D30H
L C575R D66R D31H
L C576R D66R D32H
L C577R D66R D33H
L C578R D66R D34H
L C579R D66R D42H
L C580R D66R D68H
L C581R D66R D76H
L C582R D68R D5H
L C583R D68R D6H
L C584R D68R D9H
L C585R D68R D10H
L C586R D68R D12H
L C587R D68R D15H
L C588R D68R D16H
L C589R D68R D17H
L C590R D68R D18H
L C591R D68R D19H
L C592R D68R D20H
L C593R D68R D21H
L C594R D68R D23H
L C595R D68R D24H
L C596R D68R D25H
L C597R D68R D27H
L C598R D68R D28H
L C599R D68R D29H
L C600R D68R D30H
L C601R D68R D31H
L C602R D68R D32H
L C603R D68R D33H
L C604R D68R D34H
L C605R D68R D42H
L C606R D68R D76H
L C607R D76R D5H
L C608R D76R D6H
L C609R D76R D9H
L C610R D76R D10H
L C611R D76R D12H
L C612R D76R D15H
L C613R D76R D16H
L C614R D76R D17H
L C615R D76R D18H
L C616R D76R D19H
L C617R D76R D20H
L C618R D76R D21H
L C619R D76R D23H
L C620R D76R D24H
L C621R D76R D25H
L C622R D76R D27H
L C623R D76R D28H
L C624R D76R D29H
L C625R D76R D30H
L C626R D76R D31H
L C627R D76R D32H
L C628R D76R D33H
L C629R D76R D34H
L C630R D76R D42H
L C631R D1R D1R D1
L C632R D2R D2R D1
L C633R D3R D3R D1
L C634R D4R D4R D1
L C635R D5R D5R D1
L C636R D6R D6R D1
L C637R D7R D7R D1
L C638R D8R D8R D1
L C639R D9R D9R D1
L C640R D10R D10R D1
L C641R D11R D11R D1
L C642R D12R D12R D1
L C643R D13R D13R D1
L C644R D14R D14R D1
L C645R D15R D15R D1
L C646R D16R D16R D1
L C647R D17R D17R D1
L C648R D18R D18R D1
L C649R D19R D19R D1
L C650R D20R D20R D1
L C651R D21R D21R D1
L C652R D22R D22R D1
L C653R D23R D23R D1
L C654R D24R D24R D1
L C655R D25R D25R D1
L C656R D26R D26R D1
L C657R D27R D27R D1
L C658R D28R D28R D1
L C659R D29R D29R D1
L C660R D30R D30R D1
L C661R D31R D31R D1
L C662R D32R D32R D1
L C663R D33R D33R D1
L C664R D34R D34R D1
L C665R D35R D35R D1
L C666R D40R D40R D1
L C667R D41R D41R D1
L C668R D42R D42R D1
L C669R D64R D64R D1
L C670R D66R D66R D1
L C671R D68R D68R D1
L C672R D76R D76R D1
L C673R D1R D2R D1
L C674R D1R D3R D1
L C675R D1R D4R D1
L C676R D1R D5R D1
L C677R D1R D6R D1
L C678R D1R D7R D1
L C679R D1R D8R D1
L C680R D1R D9R D1
L C681R D1R D10R D1
L C682R D1R D11R D1
L C683R D1R D12R D1
L C684R D1R D13R D1
L C685R D1R D14R D1
L C686R D1R D15R D1
L C687R D1R D16R D1
L C688R D1R D17R D1
L C689R D1R D18R D1
L C690R D1R D19R D1
L C691R D1R D20R D1
L C692R D1R D21R D1
L C693R D1R D22R D1
L C694R D1R D23R D1
L C695R D1R D24R D1
L C696R D1R D25R D1
L C697R D1R D26R D1
L C698R D1R D27R D1
L C699R D1R D28R D1
L C700R D1R D29R D1
L C701R D1R D30R D1
L C702R D1R D31R D1
L C703R D1R D32R D1
L C704R D1R D33R D1
L C705R D1R D34R D1
L C706R D1R D35R D1
L C707R D1R D40R D1
L C708R D1R D41R D1
L C709R D1R D42R D1
L C710R D1R D64R D1
L C711R D1R D66R D1
L C712R D1R D68R D1
L C713R D1R D76R D1
L C714R D2R D1R D1
L C715R D2R D3R D1
L C716R D2R D4R D1
L C717R D2R D5R D1
L C718R D2R D6R D1
L C719R D2R D7R D1
L C720R D2R D8R D1
L C721R D2R D9R D1
L C722R D2R D10R D1
L C723R D2R D11R D1
L C724R D2R D12R D1
L C725R D2R D13R D1
L C726R D2R D14R D1
L C727R D2R D15R D1
L C728R D2R D16R D1
L C729R D2R D17R D1
L C730R D2R D18R D1
L C731R D2R D19R D1
L C732R D2R D20R D1
L C733R D2R D21R D1
L C734R D2R D22R D1
L C735R D2R D23R D1
L C736R D2R D24R D1
L C737R D2R D25R D1
L C738R D2R D26R D1
L C739R D2R D27R D1
L C740R D2R D28R D1
L C741R D2R D29R D1
L C742R D2R D30R D1
L C743R D2R D31R D1
L C744R D2R D32R D1
L C745R D2R D33R D1
L C746R D2R D34R D1
L C747R D2R D35R D1
L C748R D2R D40R D1
L C749R D2R D41R D1
L C750R D2R D42R D1
L C751R D2R D64R D1
L C752R D2R D66R D1
L C753R D2R D68R D1
L C754R D2R D76R D1
L C755R D3R D4R D1
L C756R D3R D5R D1
L C757R D3R D6R D1
L C758R D3R D7R D1
L C759R D3R D8R D1
L C760R D3R D9R D1
L C761R D3R D10R D1
L C762R D3R D11R D1
L C763R D3R D12R D1
L C764R D3R D13R D1
L C765R D3R D14R D1
L C766R D3R D15R D1
L C767R D3R D16R D1
L C768R D3R D17R D1
L C769R D3R D18R D1
L C770R D3R D19R D1
L C771R D3R D20R D1
L C772R D3R D21R D1
L C773R D3R D22R D1
L C774R D3R D23R D1
L C775R D3R D24R D1
L C776R D3R D25R D1
L C777R D3R D26R D1
L C778R D3R D27R D1
L C779R D3R D28R D1
L C780R D3R D29R D1
L C781R D3R D30R D1
L C782R D3R D31R D1
L C783R D3R D32R D1
L C784R D3R D33R D1
L C785R D3R D34R D1
L C786R D3R D35R D1
L C787R D3R D40R D1
L C788R D3R D41R D1
L C789R D3R D42R D1
L C790R D3R D64R D1
L C791R D3R D66R D1
L C792R D3R D68R D1
L C793R D3R D76R D1
L C794R D4R D5R D1
L C795R D4R D6R D1
L C796R D4R D7R D1
L C797R D4R D8R D1
L C798R D4R D9R D1
L C799R D4R D10R D1
L C800R D4R D11R D1
L C801R D4R D12R D1
L C802R D4R D13R D1
L C803R D4R D14R D1
L C804R D4R D15R D1
L C805R D4R D16R D1
L C806R D4R D17R D1
L C807R D4R D18R D1
L C808R D4R D19R D1
L C809R D4R D20R D1
L C810R D4R D21R D1
L C811R D4R D22R D1
L C812R D4R D23R D1
L C813R D4R D24R D1
L C814R D4R D25R D1
L C815R D4R D26R D1
L C816R D4R D27R D1
L C817R D4R D28R D1
L C818R D4R D29R D1
L C819R D4R D30R D1
L C820R D4R D31R D1
L C821R D4R D32R D1
L C822R D4R D33R D1
L C823R D4R D34R D1
L C824R D4R D35R D1
L C825R D4R D40R D1
L C826R D4R D41R D1
L C827R D4R D42R D1
L C828R D4R D64R D1
L C829R D4R D66R D1
L C830R D4R D68R D1
L C831R D4R D76R D1
L C832R D4R D1R D1
L C833R D7R D5R D1
L C834R D7R D6R D1
L C835R D7R D8R D1
L C836R D7R D9R D1
L C837R D7R D10R D1
L C838R D7R D11R D1
L C839R D7R D12R D1
L C840R D7R D13R D1
L C841R D7R D14R D1
L C842R D7R D15R D1
L C843R D7R D16R D1
L C844R D7R D17R D1
L C845R D7R D18R D1
L C846R D7R D19R D1
L C847R D7R D20R D1
L C848R D7R D21R D1
L C849R D7R D22R D1
L C850R D7R D23R D1
L C851R D7R D24R D1
L C852R D7R D25R D1
L C853R D7R D26R D1
L C854R D7R D27R D1
L C855R D7R D28R D1
L C856R D7R D29R D1
L C857R D7R D30R D1
L C858R D7R D31R D1
L C859R D7R D32R D1
L C860R D7R D33R D1
L C861R D7R D34R D1
L C862R D7R D35R D1
L C863R D7R D40R D1
L C864R D7R D41R D1
L C865R D7R D42R D1
L C866R D7R D64R D1
L C867R D7R D66R D1
L C868R D7R D68R D1
L C869R D7R D76R D1
L C870R D8R D5R D1
L C871R D8R D6R D1
L C872R D8R D9R D1
L C873R D8R D10R D1
L C874R D8R D11R D1
L C875R D8R D12R D1
L C876R D8R D13R D1
L C877R D8R D14R D1
L C878R D8R D15R D1
L C879R D8R D16R D1
L C880R D8R D17R D1
L C881R D8R D18R D1
L C882R D8R D19R D1
L C883R D8R D20R D1
L C884R D8R D21R D1
L C885R D8R D22R D1
L C886R D8R D23R D1
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Classifications

9 codes
IPC · International Patent Classification
Section C — Chemistry; metallurgy
  • C07F15/00
  • C09K11/06
Section H — Electricity
  • H10K99/00
  • H10K50/11
  • H10K50/16
  • H10K85/30
  • H10K101/30
  • H10K101/40
  • H10K50/18

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⤢ drag to zoomJan 2022Apr 2022Jul 2022Oct 2022Jan 2023Apr 2023Jul 2023Oct 2023Jan 2024USPTOApplicantNon-final rejectionResponse after non-finalResponse after final
USPTOApplicanthover for detail · click to open
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1.7 y
635 days filing → grant
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2
non-final + final
Responses
2
1 RCE
Examiner
Alexander C Kollias
art unit 1767 · TC 1700
Citations: 198 back · 0 forward

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