USPatent applicationPatented

Electrophotographic photosensitive member, method for manufacturing electrophotographic photosensitive member, process cartridge, and electrophotographic apparatus

Granted 5 Sep 2017 · 1 office action

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Abstract

An electrophotographic photosensitive member has a support, a charge generation layer, and a charge transport layer in this order, the charge transport layer containing a charge transport material. The charge transport layer is a surface layer of the electrophotographic photosensitive member and contains a polycarbonate resin having a structural unit selected from group A and a structural unit selected from group B (groups A and B defined in the disclosure).

Description

20 parts
BACKGROUND OF THE INVENTION
›Field of the Invention

The present invention relates to an electrophotographic photosensitive member, a method for manufacturing this electrophotographic photosensitive member, and a process cartridge and an electrophotographic apparatus incorporating this electrophotographic photosensitive member.

›Description of the Related Art

Electrophotographic photosensitive members having a charge transport layer as a surface layer are required to be resistant to wear enough to withstand repeated use. To improve the wear resistance of the charge transport layer, researchers have been studying the structure of resins that are used as binders in the charge transport layer, polycarbonate resins in particular (Japanese Patent Laid-Open Nos. 2011-26574, 5-113680, 4-149557, 6-11877, and 2005-338446)

›SUMMARY OF THE INVENTION

An aspect of the invention provides an electrophotographic photosensitive member with which fog can be very effectively reduced. Some other aspects of the invention provide a method for manufacturing such an electrophotographic photosensitive member and a process cartridge and an electrophotographic apparatus incorporating such an electrophotographic photosensitive member.

An electrophotographic photosensitive member according to an aspect of the invention has a support, a charge generation layer, and a charge transport layer in this order, the charge transport layer containing a charge transport material. The charge transport layer is a surface layer of the electrophotographic photosensitive member and contains a polycarbonate resin having a structural unit selected from group A and a structural unit selected from group B.

The group A includes structural units represented by formulae (101) and (102).

(In formula (101), R 211 to R 214 each independently represent a hydrogen atom or an alkyl, aryl, or alkoxy group. R 213 represents an alkyl, aryl, or alkoxy group. R 216 and R 217 each independently represent an alkyl group containing 1 to 9 carbon atoms. i 211 represents an integer of 0 to 3. R 215 and (CH 2 ) i CHR 216 R 217 are different groups.)

(In formula (102), R 221 to R 224 each independently represent a hydrogen atom or an alkyl, aryl, or alkoxy group. R 225 and R 226 each independently represent an alkyl group containing 1 to 9 carbon atoms. R 225 and R 226 are different groups. i 221 represents and integer of 0 to 3.)

The group b includes structural units represented by formulae (104), (105), and (106).

(In formula (104), R 241 to R 244 each independently represent a hydrogen atom or an alkyl, aryl, or alkoxy group. X represents a single bond, an oxygen atom, a sulfur atom, or a sulfonyl group.)

(In formula (105), R 251 to R 254 each independently represent a hydrogen atom or an alkyl, aryl, or alkoxy group. R 236 and R 237 each independently represent a hydrogen atom or an alkyl, aryl, or halogenated alkyl group.)

(In formula (106), R 261 to R 264 each independently represent a hydrogen atom or an alkyl, aryl, or alkoxy group. W represents a cycloalkylidene group containing 5 to 12 carbon atoms.)

Further features of the present invention will become apparent from the following description of exemplary embodiments with reference to the attached drawings.

›BRIEF DESCRIPTION OF THE DRAWINGS

FIG. 1 illustrates an example of a schematic structure of an electrophotographic apparatus installed with a process cartridge that incorporates an electrophotographic photosensitive member.

FIG. 2 is a powder X-ray diffraction pattern of a crystalline hydroxygallium phthalocyanine used in Examples.

FIG. 3 is a powder X-ray diffraction pattern of a crystalline chlorogallium phthalocyanine used in Examples.

FIG. 4 is a powder X-ray diffraction pattern of a crystalline hydroxygallium phthalocyanine used in Examples.

FIG. 5 is a diagram for describing a 1-dot “knight move in chess” pattern image.

›DESCRIPTION OF THE EMBODIMENTS · 1 of 7

Through research, the inventors found the following fact. That is, when an electrophotographic photosensitive member having a charge transport layer as a surface, layer is used repeatedly, the charge transport layer becomes thinner due to wear. This leads to increased electric field intensity, causing the technical problem called “fog” on images, i.e., a defect whereby a small amount of toner is developed in unintended areas of the images.

The known electrophotographic photosensitive members according to the aforementioned publications, having a charge transport layer that contains a no resin as a binder, help to reduce the fog, but not to the extent that the recent high demand for long-life electrophotographic photosensitive members would be fully satisfied.

An aspect of the invention therefore provides an electrophotographic photosensitive member with which fog can be very effectively reduced. Some other aspects of the invention provide a method for manufacturing such an electrophotographic photosensitive member and a process cartridge and an electrophotographic apparatus incorporating such an electrophotographic photosensitive member.

The following describes certain aspects of the invention by providing some preferred embodiments. Studies conducted by the inventors have revealed that the use of a particular kind of polycarbonate resin in a charge transport layer of an electrophotographic photosensitive member significantly improves the mechanical strength of the photosensitive member and leads to effective reduction of fog. To be more specific, an electrophotographic photosensitive member according to an aspect of the invention has a support, a charge generation layer, and a charge transport layer in this order, the charge transport layer containing a charge transport material. The charge transport layer is a surface layer of the electrophotographic photosensitive member and contains a polycarbonate resin having a structural unit selected from group A and a structural unit selected from group B.

The group A includes structural units represented by formulae (101) and (102).

In formula (101), R 211 to R 214 each independently represent a hydrogen atom or an alkyl, aryl, or alkoxy group. R 215 represents an alkyl, aryl, or alkoxy group. R 216 and R 217 each independently represent a substituted or unsubstituted alkyl group containing 1 to 9 carbon atoms. i 211 represents an integer of 0 to 3. When i 211 is 0, this site is a single bond. R 215 and (CH 2 ) i CHR 216 R 217 are different groups.

In formula (102), R 221 to R 224 each independently represent a hydrogen atom or an alkyl, aryl, or alkoxy group. R 225 and R 226 each independently represent a substituted or unsubstituted alkyl group containing 1 to 9 carbon atoms. R 225 and R 226 are different groups. i 221 represents an integer of 0 to 3. When i 221 is 0, this site is a single bond.

The group B includes structural units represented by formulae (104), (105), and (106).

In formula (104), R 241 to R 244 each independently represent a hydrogen atom or an alkyl, aryl, or alkoxy group. X represents a single bond, an oxygen atom, a sulfur atom, or a sulfonyl group.

In formula (105), R 251 to R 254 independently represent a hydrogen atom or an alkyl, aryl, or alkoxy group. R 256 and R 257 each independently represent a hydrogen atom or an alkyl, aryl, or halogenated alkyl group. The aryl group may be substituted with an alkyl or alkoxy group or a halogen atom.

In formula (106), R 261 to R 264 each independently represent a hydrogen atom or an alkyl, aryl, or alkoxy group. W represents a cycloalkylidene group containing 5 to 12 carbon atoms. The cycloalkylidene group may be substituted with an alkyl group.

This polycarbonate resin having a structural unit selected from group A and a structural unit selected from group B can be synthesized using, for example, one of the following two processes. The first is to allow at least one bisphenol compound selected from formulae (107) and (108) and at least one bisphenol compound selected from formulae (110) to (112) to react directly with phosgene (a phosgene process). The second is to transesterify the at least two bisphenol compounds and a bisaryl carbonate, such as diphenyl carbonate, di-p-tolyl carbonate, phenyl-p-tolyl carbonate, di-p-chlorophenyl carbonate, or dinaphthyl carbonate (a transesterification process).

In the phosgene process, the at least two bisphenol compounds and phosgene are usually reacted in the presence of an acid-binding agent and a solvent. The acid-binding agent can be pyridine, an alkali metal hydroxide, such as potassium hydroxide or sodium hydroxide, or similar. The solvent can be methylene chloride, chloroform, or similar. A catalyst and/or a molecular-weight modifier may be added in order to accelerate the condensation polymerization. The catalyst can be triethylamine or any other tertiary amine, a quaternary ammonium salt, or similar. The molecular-weight modifier can be phenol, p-cumylphenol, t-butylphenol, a phenol substituted with a long-chain alkyl group, or similar mono functional compounds.

The synthesis of the polycarbonate resin may involve an antioxidant, such as sodium sulfite or hydrosulfide, and/or a branching agent, such as phloroglucin or isatin bisphenol. The polycarbonate resin can be synthesized at a temperature of 0° C. to 150° C., preferably 5° C. to 40° C. The duration of the reaction depends on the reaction temperature but can typically be in the range of 0.5 minutes to 10 hours, preferably 1 minute to 2 hours. During the reaction, the pH of the reaction system can be 10 or more.

Here are some specific examples of bisphenol compounds that can be used for synthesis.

(1) At least one bisphenol compound selected from formulae (107) and (108)

In formula (107) R 211 to R 214 each independently represent a hydrogen atom or an alkyl, aryl, or alkoxy group. R 215 represents an alkyl, aryl, or alkoxy group. R 216 and R 217 each independently represent a substituted or unsubstituted alkyl group containing 1 to 9 carbon atoms. i 211 represents an integer of 0 to 3. When i 211 is 0, this site is a single bond. R 215 and (CH 2 ) i CHR 216 R 217 are different groups.

›DESCRIPTION OF THE EMBODIMENTS · 2 of 7

In formula (108), R 221 to R 224 each independently represent a hydrogen atom or an alkyl, aryl, or alkoxy group. R 225 and R 226 each independently represent a substituted or unsubstituted alkyl group containing 1 to 9 carbon atoms. R 225 and R 226 different groups. i 221 represents an integer of 0 to 3. When i 221 is 0, this site is a single bond.

Examples of bisphenol compounds represented by general formulae (107) and (108) include 2,2-bis(4-hydroxyphenyl)-4-methyl pentane, 2,2-bis(4-hydroxyphenyl)-5-methyl hexane, 3,3-bis(4-hydroxyphenyl)-5-methyl heptane, 2,2-bis(4-hydroxyphenyl)-3-methyl butane, 1,1-bis(4-hydroxyphenyl)-1-phenyl-2-methyl propane, 1,1-bis(4-hydroxyphenyl)-1-phenyl-3-methyl butane, 2,2-bis(4-hydroxyphenyl)-6-methyl heptane, 1,1-bis(4-hydroxyphenyl)-2-ethyl hexane, and 1,1-bis(4-hydroxyphenyl)-1-phenyl-2-methyl pentane. A combination of two or more of these compounds can also be used.

(2) At least one bisphenol compound selected from formulae (110) to (112)

In formula (110), R 241 to R 244 each independently represent a hydrogen atom or an alkyl, aryl, or alkoxy group. X represents a single bond, an oxygen atom, a sulfur atom, or a sulfonyl group.

In formula (111), R 251 to R 254 independently represent a hydrogen atom or an alkyl, aryl, or alkoxy group. R 256 and R 257 each independently represent a hydrogen atom or an alkyl, aryl, or halogenated alkyl group. The aryl group may be substituted with an alkyl or alkoxy group or a halogen atom.

In formula (112), R 261 to R 264 each independently represent a hydrogen atom or an alkyl, aryl, or alkoxy group. W represents a cycloalkylidene group containing 5 to 12 carbon atoms. The cycloalkylidene group may be substituted with an alkyl group.

Examples of bisphenol compounds represented by formulae (110) to (112) include 4,4′dihydroxybiphenyl, 4,4″-dihydroxy-3,3′-dimethyl biphenyl, 4,4′-dihydroxy-2,2′-dimethyl biphenyl, 4,4′-dihydroxy-3,3′,5-trimethyl biphenyl, 4,4′-dihydroxy-3,3′,5,5′-tetramethyl biphenyl, 4,4′-dihydroxy-3,3′-dibutyl biphenyl, 4,4′-dihydroxy-3,3′-dicyclohexyl biphenyl, 3,3′-difluoro-4,4′-dihydroxybiphenyl, 4,4′-dihydroxy-3,3′-diphenyl biphenyl, 1,1-bis(4-hydroxyphenyl)ethane, 1,1-bis(3-methyl-4-hydroxyphenyl)ethane, 1,1-bis(3-fluoro-4-hydroxyphenyl)ethane, 1,1-bis(2-tert-butyl-4-hydroxy-3-methyl phenyl)ethane, 1,2-bis(4-hydroxyphenyl)ethane, 1,2-bis(3-methyl-4-hydroxyphenyl)ethane, 2,2-bis(4-hydroxyphenyl)propane, 2,2-bis(3-methyl-4-hydroxyphenyl)propane, 2,2-bis(3-cyclohexyl-4-hydroxyphenyl)propane, 2,2-bis(3-phenyl-4-hydroxyphenyl)propane, 2,2-bis(3,5-dimethyl-4-hydroxyphenyl)propane, 2,2-bis3-fluoro-4-hydroxyphenyl)propane, 2,2-bis(3-chloro-4-hydroxyphenyl)propane, 2,2-bis(3-bromo-4-hydroxyphenyl)propane, 2,2-bis(3,5-difluoro-4-hydroxyphenyl)propane, 2,2-bis(3,5-dichloro-4-hydroxyphenyl)propane, 2,2-bis(3,5-dibromo-4-hydroxyphenyl)propane, 2,2-bis(2-tert-butyl-4-hydroxy-3-methyl phenyl)propane, 2,2-bis(4-hydroxyphenyl)hexafluoropropane, 2,2-bis(3-methyl-4-hydroxyphenyl)hexafluoropropane, 2,2-bis(3,5-dimethyl-4-hydroxyphenyl)hexafluoropropane, 2,2-bis(3-phenyl-4-hydroxyphenyl)hexafluoropropane, 2,2-bis(3-fluoro-4-hydroxyphenyl)hexafluoropropane, 2,2-bis(3-chloro-4-hydroxyphenyl)hexafluoropropane, 1,1-bis(4-hydroxyphenyl)cyclohexane, 1,1-bis(3-methyl-4-hydroxyphenyl)cyclohexane, 1,1-bis(3-cyclo-4-hydroxyphenyl)cyclohexane, 1,1-bis(3-phenyl-4-hydroxyphenyl)cyclohexane, 1,1-bis(3,5-dimethyl-4-hydroxyphenyl)cyclohexane, 1,1-bis(3-fluoro-hydroxyphenyl)cyclohexane, 1,1-bis(3-chloro-4-hydroxyphenyl)cyclohexane, 1,1-bis(3-bromo-4-hydroxyphenyl)cyclohexane, 1,1-bis(3,5-difluoro-4-hydroxyphenyl)cyclohexane, 1,1-bis(3,5-dichloro-4-hydroxyphenyl)cyclohexane, 1,1-bis(3,5-dibromo-4-hydroxyphenyl)cyclohexane, 1,1-bis(2-tert-butyl-4-hydroxy-3-methyl phenyl)cyclohexane, bis(4-hydroxyphenyl)sulfone, 1,1-bis(4-hydroxyphenyl)-3,3,5-trimethyl cyclohexane, 1,1-bis(4-hydroxyphenyl)cyclopentane, 1,1-bis(4-hydroxyphenyl)-1-phenyl ethane, bis(4-hydroxyphenyl)diphenyl methane, 9,9-bis(4-hydroxyphenyl)-fluorene, and 2,2-bis(4-hydroxyphenyl)butane. A combination of two or more of these compounds can also be used Structural unit selected from group A

The use of a polycarbonate resin having any of the structural units represented by formulae (A-101) to (A-105), as compared to others selected from group PI, leads to more effective reduction of fog and better electrical characteristics. Polycarbonate resins having any of these structural units, while in the charge transport layer, will keep a constant intermolecular distance and a constant distance from the charge transport material, improving mechanical strength and electrical characteristics.

The use of a polycarbonate resin having any of the structural units represented by (A-201) to (A-205), as compared to others selected from group A, is effective in improving the storage stability of the coating liquid for the formation of the charge transport layer, the prevention of photomemories, and electrical characteristics after repeated use. Polycarbonate resins having any of these structural units will exhibit improved solubility in the solvent of the coating liquid for the formation of the charge transport layer. Furthermore, polycarbonate resins having any of these structural units, while in the charge transport layer, will keep a constant distance from the charge transport material, improving electrical characteristics. A photomemory is a defect caused by the retention of light-generated carriers in a photosensitive layer of an electrophotographic photosensitive member and occurs when an electrophotographic photosensitive member is exposed to light, such as from a fluorescent lamp, in association with maintenance of a process cartridge or electrophotographic apparatus after repeated use. It an electrophotographic photosensitive member in this state is used to produce an image, the difference in electrical potential between the exposed and unexposed area appears as uneven density in the resulting image.

›DESCRIPTION OF THE EMBODIMENTS · 3 of 7

The use of a polycarbonate resin having any of the structural units represented by (A-401) to (A-405), as compared to others selected from group A, is effective in improving the storage stability of the coating liquid for the formation of the charge transport layer and the prevention of photomemories. Polycarbonate resins having any of these structural units will exhibit improved solubility in the solvent of the coating liquid for the formation of the charge transport layer.

Structural Unit Selected from Group B

The use of a polycarbonate resin having any of the structural units represented by formulae (B-101) to (B-105), as compared to others selected from group B, leads to more effective reduction of fog and better electrical characteristics. Polycarbonate resins having any of these structural units, while in the charge transport layer, will keep a constant intermolecular distance and a constant distance from the charge transport material, improving mechanical strength and electrical characteristics.

The use of a polycarbonate resin having any of the structural units represented by formulae (B-201) to (B-205), as compared to others selected from group B, leads to more effective reduction of fog. Polycarbonate resins having any of these structural units will be, while in the charge transport layer, densely packed with short intermolecular distances, improving mechanical strength.

The use of a polycarbonate resin having any of the structural units represented by (B-301) to (B-308), as compared to others selected from group B, is effective in improving the storage stability of the coating liquid for the formation of the charge transport layer, the prevention of photomemories, and electrical characteristics after repeated use. Polycarbonate resins having any of these structural units will exhibit improved solubility in the solvent of the coating liquid for the formation of the charge transport layer. Furthermore, polycarbonate resins having any of these structural units, while in the charge transport layer, will keep a constant distance from the charge transport material, improving electrical characteristics.

The use of a polycarbonate resin having any of the structural units represented by (B-401) to (B-405), as compared to others selected from group B, is effective in improving the storage stability of the coating liquid for the formation of the charge transport layer, the prevention of photomemories, and electrical characteristics after repeated use. Polycarbonate resins having any of these structural units will exhibit improved solubility in the solvent of the coating liquid for the formation of the charge transport layer. Furthermore, polycarbonate resins having any of these structural units, while in the charge transport layer, will keep a constant distance from the charge transport material, improving electrical characteristics.

The proportion of the structural unit selected from group A in the polycarbonate resin can be 20 mol % or more and 70 mol % or less, preferably 25 mol % or more and 49 mol % or less.

In an embodiment of the invention, the weight-average molecular weight (Mw) of the polycarbonate resin can be 30,000 or more and 100,000 or less, preferably 40,000 or more and 80,000 or less. If the weight-average molecular weight of the polycarbonate resin is less than 30,000, the reduction of fog may be insufficient due to low mechanical strength. If the weight-average molecular weight of the polycarbonate resin is more than 100,000, the coating liquid for the formation of the charge transport layer may lack storage stability. In Examples below, the weight-average molecular weights of the resins are polystyrene equivalents measured using gel permeation chromatography (GPC) [on Alliance HPLC system (Waters)] under the following conditions: two Shodex KF-805L columns (Showa Denko), 0.25 w/v% chloroform solution as sample, chloroform at 1 ml/min as eluent, and UV detection at 254 nm.

The intrinsic viscosity of the polycarbonate resin can be in the range of 0.3 dL/g to 2.0 dL/g.

The relative dielectric constant c of a polycarbonate resin can be determined according to the Clausius-Mossotti equation that follows.

K =(4π/3)×(α/ V )

ε=(1+2 K )/(1 −K )

In this equation, V is the volume of the molecule in its stable structure obtained after structural optimization using density functional calculations E3LYP/6-31G(d,p), and α is the polarizability according to a restricted Hartree-Fock calculation (using the basis function 6-31G(d,p)) in this post-optimization stable structure. For polycarbonate resins having multiple structural units (e.g., copolymers), the relative dielectric constant values of the individual structural units multiplied by their respective proportions are totaled up. For example, exemplified compound 1001 has relative dielectric constant values of 2.12 and 2.11 in structural units (A-101) and (B-101), respectively. The relative dielectric constant of exemplified compound 1001 is therefore 2.12 based on the proportions of the structural units. In an embodiment of the invention, the relative dielectric constant 6 can be 2.15 or less, preferably 2.13 or less.

A relative dielectric constant of 2.15 or less leads to better response at high speeds, presumably for the following reason. The term. “response at high speeds” means that the density of an image produced is comparable between normal and faster process speeds in the image formation process. Altering the process speed usually leads to a change in the amount of light the electrophotographic photosensitive member receives. Even if the amount of light is controlled to achieve constant light exposure of the electrophotographic photosensitive member, different process speeds can result in different image densities. This difference in density becomes more significant in faster processes because the time from exposure to development shortens with increasing process speed. One cause is reciprocal failure, which necessitates complicated control in order to equalize the image density. The inventors, however, presume that reciprocal failure is not the only cause. Another cause is, in the opinion of the inventors, a difference in the rate of light decay of the surface potential of the electrophotographic photosensitive member that occurs during development, a stage in the exposure and development process the electrophotographic photosensitive member undergoes to form an image. To be more specific, even if the electrophotographic photosensitive member has equal surface potentials at the time of development, a difference in the rate of light decay of its surface potential will lead to a difference in the ability of the photosensitive member to develop toner, resulting in variations in density between the images produced. Charge generated in a charge generation layer is injected into a charge transport layer and then is transported to the surface of the electrophotographic photosensitive member by travelling in the charge transport layer. Some amount of charge reaches the surface of the electrophotographic photosensitive member in a short time, but some other amount of charge requires a relatively long time to arrive (residual charge). In view of the fact that the light decay during development occurs immediately after the photoresponse in the charging and exposure process, the rate of light decay should be influenced by the behavior of charge carriers in the charge transport layer toward the residual charge at low electric-field intensity. When the relative dielectric constant of the polycarbonate resin is 2.15 or less, the electrophotographic photosensitive member will not greatly change its capacity to put out residual charge at low electric-field intensity over time, and its rate of light decay during development will therefore be low. Furthermore, the inventors believe that when the relative dielectric constant of the polycarbonate resin is 2.15 or less, the ability of the electrophotographic photosensitive member to develop toner is not very sensitive to unevenness in the surface potential of the electrophotographic photosensitive member, and the density of an image produced is thus comparable between normal and faster process speeds in the image formation process.

›DESCRIPTION OF THE EMBODIMENTS · 4 of 7

When the relative dielectric constant of the polycarbonate resin is 2.15 or less, moreover, the intensity of an electric field applied to the charge transport layer will act favorably on the transport of charge through the charge transport layer and the injection of charge from a charge generation layer into the charge transport layer, making the electrophotographic photosensitive member excellent in terms of the prevention of photomemories after repeated use.

Specific Examples of Polycarbonate Resins

Tables 1 to 12 present specific examples of polycarbonate resins having a structural unit selected from group A and a structural unit selected from group B, along with their relative dielectric constant values.

Synthesis of the Polycarbonate Resin

The following describes a method for synthesizing exemplified compound 1001 by way of example. The other polycarbonate resins can be synthesized using appropriate group-A and group-B structural raw materials (raw materials from which the structural units selected from group A and group B, respectively, are produced) in appropriate amounts in the method described in Synthesis of exemplified compound. 1001 below. The weight-average molecular weight of the resin can be adjusted by controlling the amount of the molecular-weight modifier.

Synthesis of Exemplified Compound 1001

The following materials were dissolved in 1100 ml of a 5% by mass aqueous solution of sodium hydroxide: 53.0 g (0.196 mol) of 2,2-bis(4-hydroxyphenyl)-4-methyl pentane (Tokyo Chemical Industry, product code D3267) as group-A structural raw material, 41.2 g (0.204 mol) of bis (4-hydroxyphenyl)ether (Tokyo Chemical Industry, product code 132121) as group-B structural raw material, and 0.1 g of hydrosulfide. After the addition of 500 ml of methylene chloride, 60 g of phosgene was blown into the solution over 60 minutes with stirring, with the temperature maintained at 15° C.

The reaction solution into which the phosgene had been blown was stirred with 1.3 g of p-t-butylphenol (Tokyo Chemical Industry, product code B0383) as a molecular-weight modifier until emulsification. The resulting emulsion was stirred at 23° C. for 1 hour with 0.4 ml of triethylamine for polymerization.

After the completion of polymerization, the reaction solution was separated into aqueous and organic phases. The organic phase was neutralized with phosphoric acid and then repeatedly washed with water unitl the conductivity of the washing (aqueous phase) was 10 μS/cm or less. The resulting solution of polymer was added dropwise into warm water kept at 45° C., and the solvent was evaporated away. This yielded a white powdery precipitate. This precipitate was collected through filtration and dried at 110° C. for 24 hours. In this way, the exemplified compound 1001 polycarbonate resin was obtained as a copolymer composed of group-A structural unit A-101 and group-B structural unit B-101.

The obtained polycarbonate resin was analyzed using infrared absorption spectroscopy the spectrum had a carbonyl absorption at around 1770 am. −1 and an ether absorption at around 1240 cm −1 , identifying the product to be a polycarbonate resin.

Electrophotographic Photosensitive Member

An electrophotographic photosensitive member according to an aspect of the invention has a support, a charge generation layer, and a charge transport layer as a surface layer in this order. There may be other layers between the support and the charge transport layer. The details of the individual layers are given below.

This electrophotographdc photosensitive member can be manufactured through, for example, preparation of coating liquids for forming the layers described below and subsequent application and drying of these liquids in the desired order of layers. Examples of methods that can be used to apply the coating liquids include dip coating, spray coating, curtain coating, and spin coating. In particular, dip coating provides excellent efficiency and productivity.

Support

in an embodiment of the invention, the support can be a conductive support, i.e., a support having electroconductivity. Examples of conductive supports include supports made of aluminum, iron, nickel, copper, gold, or other metals or alloys and supports composed of an insulating substrate, such as polyester resin, polycarbonate resin, polyimide resin, or glass, and any of the following thin films thereon: a thin film of aluminum, chromium, silver, gold, or similar metals; a thin film of inddum oxide, tin oxide, zinc oxide, or similar conductive materials; and a thin film of a conductive ink containing silver nanowires.

The surface of the support may have been treated. for the purpose of improved electrical characteristics and reduced interference fringes. Examples of treatments Include anodization and other electrochemical processes, wet honing, blasting, and cutting.

With regard to shape, the support can be, for example, a cylinder or a film.

Conductive Layer

In an embodiment of the invention, there may be a conductive layer on the support. Such a conductive layer prevents interference fringes by covering irregularities and defects on the support. The average thickness of the conductive layer can be 5 μm or more and 40 μm or less, preferably 10 μm or more and 30 μm or less.

The conductive layer may contain conducive particles and a binder resin. The conductive particles can be carbon black, metallic particles, metal oxide particles, or similar.

The metal oxide particles can be particles of zinc oxide, white lead, aluminum oxide, indium oxide, silicon oxide, zirconium oxide, tin oxide, titanium oxide, magnesium oxide, antimony oxide, bismuth oxide, tin-doped indium oxide, antinomy- or tantalum-doped tin oxide, or similar. A combination of two or more of these particles can also be used. Particles of zinc oxide, tin oxide, and titanium oxide are preferred. In particular, titanium oxide particles, absorbing little of visible and near-infrared light and white in color, provide high sensitivity. Titanium oxide has several crystal forms, such as rutile, anatase, brookite, and amorphous, and any of these crystal forms can be used, preferably rutile. It is also possible to use needle or granular crystals of titanium oxide. The number-average primary particle diameter of the metal oxide particles can be in the range of 0.05 to 1 μm, preferably 0.1 to 0.5 μm.

›DESCRIPTION OF THE EMBODIMENTS · 5 of 7

The binder resin can be phenolic, polyurethane, polyamide, polyimide, polyamide-imide, polyvinyl acetal, epoxy, acrylic, melamine, polyester, or similar resins. A combination of two or more of these resins can also be used. In particular, curable resins render the conductive layer highly resistant to solvents that can be used in the coating liquids for the formation of other layers and highly adhesive to a conductive support, without compromising the dispersibility and dispersion stability of metal oxide particles. Such a curable resin can be a thermosetting resin. Examples of thermosetting resins include thermosetting phenolic resins and thermosetting polyurethane resins.

Undercoat Layer

In an embodiment of the invention, there may be an undercoat layer on the support or the conductive layer. Such an undercoat layer provides enhanced barrier properties and adhesiveness. The average thickness of the undercoat layer can be 0.3 μm or more and 5.0 μm or less.

The undercoat layer may contain a binder resin and either an electron transport material or metal oxide particles. Such a structure provides a pathway through which electrons generated in a charge generation layer, one of the two kinds of electric charge generated in the charge generation layer, can be transported to the support. This prevents any increase in the occurrence of charge deactivation and trapping in the charge generation layer associated with improving capacity of the charge transport layer to transport charge. As a result, the initial electrical characteristics and the electrical characteristics after repeated use are improved.

Examples of electron transport materials include quinone, imide, benzimidazole, cyclopentadienylidene, fluorenone, xanthone, benzophenone, cyanovinyl, naphthylimide, and peryleneimide compounds. The electron transport material may have a polymerizable functional group, such as a hydroxy, thiol, amino, carboxy, or methoxy group.

For the metal oxide particles and the binder resin, the details are the same as in the foregoing “Conductive layer” section.

Charge Generation Layer

In an embodiment of the invention, there is a charge generation layer between the support and the charge transport layer. The charge generation layer may be contiguous to the charge transport layer. The thickness of the charge generation layer can be 0.05 μm or more and 1 μm or less, preferably 0.1 μm or more and 0.3 μm or less.

In an embodiment of the invention, the charge generation layer may contain a charge generation material and a binder resin.

The charge generation material content of the charge generation layer can be 40% by mass or more and 85% by mass or less, preferably 60% by mass or more and 80% by mass or less.

Examples of charge generation materials include: monoazo, disazo, and trisazo pigments, and other azo pigments; phthalocyanine pigments including metal phthalocyanine complexes and metal-free phthalocyanine; indigo pigments; perylene pigments; polycyclic quinone pigments; squarylium dyes; thiapyrylium salts; quinacridone pigments; azulenium salt pigments; cyanine dyes; xanthene dyes; quinone imine dyes; and styryl dyes. It is preferred that the charge generation material be a phthalocyanine pigment, more preferably crystalline gallium phthalocyanine.

Crystalline hydroxygallium phthalocyanine, crystalline chlorogallium phthalocyanine, crystalline bromogallium phthalocyanine, and crystalline iodogallium phthalocyanine have excellent sensitivity compared to other crystalline gallium phthalocyanines. Crystalline hydroxygallium phthalocyanine and crystalline chlorogallium phthalocyanine are particularly preferred. In crystalline hydroxygallium phthalocyanine, the gallium atom is coordinated by hydroxy groups as axial ligands. In crystalline chlorogallium phthalocyanine, the gallium atom is coordinated by chlorine atoms as axial ligands. In crystalline bromogallium phthalocyanine, the gallium atom is coordinated by bromine atoms as axial ligands. In crystalline iodogallium phthalocyanine, the gallium atom is coordinated by iodine atoms as axial ligands. Particularly high sensitivity is obtained with the use of a crystalline hydroxygallium phthalocyanine that exhibits peaks at Bragg angles 2θ of 7.4°±0.3° and 28.3°±0.3° in its CuKα X-ray diffraction pattern or a crystalline chlorogallium phthalocyanine that exhibits peaks at Bragg angles 2θ±0.2° of 7.4°, 16.6°, 25.5°, and 28.3° in its CuKα X-ray diffraction pattern.

The crystalline gallium phthalocyanine may contain an amide compound represented by the formula below in its crystal structure.

(In this formula, R 81 represents a methyl, propyl, or vinyl group.)

Specific examples of such amide compounds include N-methylformamide, N-propylformamide, and N-vinylformamide.

The amide compound content can be 0.1% by mass or more and 1.9% by mass or less, preferably 0.3% by mass or more and 1.5% by mass or less, with respect to the gallium phthalocyanine complex in the crystalline gallium phthalocyanine. When the amide compound content is 0.1% by mass or more and 1.9% by mass or less, the dark current from the charge generation layer at increased electric field intensity is small in the opinion of the inventors, making the charge transport layer according to this embodiment of the invention more effective in reducing fog. The amide compound content can be measured using 1 H NMR spectroscopy.

The crystalline gallium phthalocyanine containing an amide compound in its crystal structure can be obtained through a transformation process in which acid-pasted or dry-milled gallium phthalocyanine is wet-milled in a solvent containing the amide compound.

This process of wet milling is performed using a milling apparatus, such as a sand mill or a ball mill, with a dispersant, such as glass beads, steel beads, or alumina balls.

As for the binder resin, examples include resins such as polyester, acrylic resin, polycarbonate, polyvinyl butyral, polystyrene, polyvinyl acetate, polysulfone, acrylonitrile copolymers, and polyvinyl benzal. In particular, polyvinyl butyral and polyvinyl benzal are effective in dispersing crystalline gallium phthalocyanine.

›DESCRIPTION OF THE EMBODIMENTS · 6 of 7

Charge Transport Layer

In an embodiment of the invention, the charge transport layer contains a charge transport material and a polycarbonate resin that has a structural unit selected from group A and a structural unit selected from group B. The charge transport layer may optionally contain additives, such as a release agent for more efficient transfer of toner, an anti-fingerprint agent to reduce soiling or similar, filler to reduce scraping, and lubricant for higher lubricity.

In an embodiment of the invention, the charge transport layer can be formed by preparing a coating liquid for the formation of the charge transport layer by mi wing the charge transport material and the polycarbonate resin with a solvent, applying this coating liquid for the formation of the charge transport layer to form a wet coating, and drying this wet coating.

The solvent used in the coating liquid for the formation of the charge transport layer can be, for example, a ketone-based solvent, such as acetone or methyl ethyl ketone; an ester-based solvent, such as methyl acetate or ethyl acetate; an aromatic hydrocarbon solvent, such as toluene, xylene, or chlorobenzene; an ether-based solvent, such as 1,4-dioxane or tetrahydrofuran; or a halogenated hydrocarbon solvent, such as chloroform. A combination of two or more of these solvents can also be used. Solvents having a dipole moment of 1.0 D or less are preferred. Examples of solvents having a dipole moment of 1.0 D or less include o-xylene (dipole moment=0.64 D) and methylal (dipole moment=0.91 D).

The thickness of the charge transport layer can be 5 μm or more and 40 μm or less, preferably 7 μm or more and 25 μm or less.

The charge transport material content of the charge transport layer can be 20% by mass or more and 80% by mass or less, preferably 40% by mass or more and 70% by mass or less for more effective reduction of fog and higher long-term storage stability of the electrophotographic photosensitive member.

The molecular weight of the charge transport material can be 300 or more and 1,000 or less. For better electrical characteristics after repeated use and higher long-term storage stab., it is preferred that the molecular weight of the charge transport material be 600 or more and 800 or less. For more effective prevention of photomemories and higher long-term storage stability, it is preferred that the molecular weight of the charge transport material be 350 or more and 600 or less.

The charge transport material can be, for example, a triarylamine, hydrazone, stilbene, pyrazoline, oxazole, thiazole, or triallylamine compound, preferably a triarylamine compound. A combination of two or more of these compounds can also be used. The following are some specific examples of charge transport materials, represented by general formulae and exemplified compounds for each general formula.

(In this formula, Ar 101 and Ar 102 each independently represent a substituted or unsubstituted aryl group. R 101 and R 102 each independently represent a hydrogen atom, an alkyl group, or a substituted or unsubstituted aryl group. Possible substituents for an aryl group are alkyl and alkoxy groups and a halogen atom.)

Here are some exemplified compounds for (CTM-1).

(In this formula, Ar 103 to Ar 106 each independently represent a substituted or unsubstituted aryl group. Z 101 represents a substituted or unsubstituted arylene group or a divalent group in which multiple arylene groups are linked via a vinylene group. There may be a ring formed by two adjacent substituents on Ar 103 to Ar 106 Possible substituents for an aryl or arylene group are alkyl and alkoxy groups and a halogen atom.)

Here are some exemplified compounds for (CTM-2).

(In this formula, R 103 represents an alkyl group, a cycloalkyl group, or a substituted or unsubstituted aryl group. R 104 represents a hydrogen atom, an alkyl group, or a substituted or unsubstituted aryl group. Ar 107 represents a substituted or unsubstituted aryl group. Z 102 represents a substituted or unsubstituted arylene group. n 101 and m are integers of 1 to 3 and 0 to 2, respectively, with m+n 101 =3. When m is 2, the two R 103 groups may be groups of the same kind or different groups, and there may be a ring formed by two adjacent substituents on the two R 103 groups. There may be a ring formed by R 103 and Z 102 . Furthermore, there may be a ring formed by Ar 107 and R 104 involving a linking vinylene group. Possible substituents for an aryl or arylene group are alkyl and alkoxy groups and a halogen atom.)

Here are some exemplified compounds for (CTM-3).

(In this formula, Ar 108 to Ar 111 each independently represent a substituted or unsubstituted aryl group. Possible substituents for an aryl group are an alkyl group, an alkoxyl group, a halogen atom, and a 4-phenyl-buta-1,3-dienyl group.)

Here are some exemplified compounds for (CTM-4).

(In this formula, Ar 112 to Ar 117 each independently represent a substituted or unsubstituted aryl group. Z 103 represents a phenylene group, a biphenylene group, or a divalent group in which two phenylene groups are linked via an alkylene group. Possible substituents for an aryl group are alkyl and alkoxyl groups and a halogen atom.)

Here are some exemplified compounds for (CTM-5).

(In this formula, R 105 to R 108 each independently represent a monovalent group according to the formula below or an alkyl group or a substituted or unsubstituted aryl group, with at least one being a monovalent group according to the formula below. Z 104 represents a substitute or unsubstituted aryl cue group or a divalent group in which multiple arylene groups are linked via a vinylene group. n 102 is 0 or 1. Possible substituents for an aryl or arylene group are alkyl and alkoxy groups and a halogen atom.)

(In this formula, R 109 and R 110 each independently represent a hydrogen atom, an alkyl group, or a substituted or unsubstituted aryl group. Ar 110 represents a substituted or unsubstituted aryl group. Z 105 represents a substituted or unsubstituted arylene group. n 2 is an integer of 1 to 3. Possible substituents for an aryl group are alkyl, alkoxy, dialkylamino, and diarylamino groups. Possible substituents for the arylene group are alkyl and alkoxy groups and a halogen atom.)

›DESCRIPTION OF THE EMBODIMENTS · 7 of 7

Here are some exemplified compounds for (CTM-6).

(In this formula, Ar 119 represents a substituted or unsubstituted aryl group or a monovalent group according to formula (7-1) or (7-2). Ar 120 and Ar 121 each independently represent a substituted or unsubstituted aryl group. Possible substituents for an aryl group are alkyl and alkoxy groups and a halogen atom.)

(In this formula, Ar 122 and Ar 123 independently represent a substituted or unsubstituted aryl group or a substituted or unsubstituted aralkyl group. Possible substituents for an aryl and aralkyl group are alkyl and alkoxy groups and a halogen atom.)

(In this formula, R 111 and R 112 each independently represent a substituted or unsubstituted aryl group. Z 106 represents a substituted or unsubstituted arylene group. Possible substituents for an aryl and arylene group are alkyl and alkoxy groups and a halogen atom.

Here are some exemplified compounds for (CTM-7).

Process Cartridge and Electrophotographic Apparatus

FIG. 1 illustrates an example of a schematic structure of an electrophotographic apparatus installed with a process cartridge that incorporates an electrophotographic photosensitive member according to an aspect of the invention.

A cylindrical (drum-shaped) electrophotographic photosensitive member 1 is driven to rotate around a shaft in the direction of the arrow at a predetermined circumferential velocity (process speed). During rotation, the surface of the electrophotographic photosensitive member 1 is charged to a predetermined positive or negative potential by a charging unit 3 . The charged surface of the electrophotographic photosensitive member 1 is then irradiated with exposure light 4 emitted from an exposure unit (not illustrated). This produces an electrostatic latent image corresponding to the intended image information. The exposure light 4 is, for example, light emitted from an image exposure unit, such as a slit exposure or laser scanning exposure unit, and intensity-modulated according to the time-sequence electric digital pixel signal of the intended image information.

The electrostatic latent image formed on the surface of the electrophotographic photosensitive member 1 is then developed (normal development or reversal development) using toner contained in a development unit 5 . This produces a toner image on the surface of the electrophotographic photosensitive member 1 . The toner image formed on the surface of the electrophotographic photosensitive member 1 is transferred to a transfer medium 7 by a transfer unit 6 . To the transfer unit 6 , a bias power supply (not illustrated) applies a bias voltage having the opposite polarity with respect to the charge the toner has. When the transfer medium 7 is paper, the transfer medium 7 is discharged from a feeding section (not Illustrated) in synchronization with the rotation of the electrophotographic photosensitive member 1 and fed into the space between the electrophotographic photosensitive member 1 and the transfer unit 6 .

The transfer medium 7 carrying the toner image transferred from the electrophotographic photosensitive member 1 is separated from the surface of the electrophotographic photosensitive member 1 and conveyed to a fixing unit 8 , at which the toner image is fixed. As a result, an image-bearing, article (a photographic print or copy) is printed out of the electrophotographic apparatus.

The surface of the electrophotographic photosensitive member 1 following transferring the toner image to the transfer medium 7 is cleaned by a cleaning unit 9 to remove any adhering substance, such as toner (residual toner). It is also possible to collect any residual toner directly with the development element or any other component, thanks to the advent of clearnerless systems in recent years. The surface of the electrophotographic photosensitive member 1 is again used to form the image after the charge is removed through irradiation with pre-exposure light 10 emitted from a pre-exposure unit (not illustrated). When the charging unit 3 is a contact charging unit, i.e., a roller-based or similar charging unit, the pre-exposure unit may be unnecessary.

In an embodiment of the invention, two or more of these structural elements including the electrophotographic photosensitive member 1 , the charging unit 3 , the development unit 5 , and the cleaning unit 9 may be integrally held in a container to form a process cartridge. This process cartridge may be configured to be detachably attached to the main body of an electrophotographic apparatus. For example, at least one selected from the charging unit 3 , the development unit 5 , the transfer unit 6 , and the cleaning unit 9 and the electrophotographic photosensitive member 1 are integrally held and assembled into a cartridge, forming a process cartridge 11 that can be detachably attached to the main body of an electrophotographic apparatus using a guiding unit 12 , such as rails, on the main body of the electrophotographic apparatus.

When the electrophotographic apparatus is a photocopier or a printing machine, the exposure light 4 may be a light reflected from or transmitted through the original document, and can also be a light emitted as a result of scanning with a laser beam, driving of an LED array or liquid crystal shutter array, or similar processes performed according to a signal obtained by scanning the original document with a sensor and converting it into a digital image.

The electrophotographic photosensitive member 1 according to an embodiment of the invention also has a wide range of applications in the field of applied electrophotography, including laser beam printers, CRT printers, LED printers, fax machines, liquid-crystal printers, and laser platemaking.

›EXAMPLES · 1 of 8

The following describes certain aspects of the invention in further detail using examples and comparative examples. No aspect of the invention is limited to these examples while within the scope of the invention. The term. “parts” in the following examples and comparative examples is based on mass unless otherwise specified.

Synthesis of Polycarbonate Resins

Polycarbonate resins were synthesized as follows. Table 13 summarizes the proportions (mol %) of the individual structural units and the weight-average molecular weight.

Polycarbonate Synthesis Example 1

The following materials were dissolved in 1100 ml of a 5% by mass aqueous solution of sodium hydroxide: 53.0 g (0.196 mol) of 2,2-bis(4-hydroxyphenyl)-4-methyl pentane (BPMP; Tokyo Chemical Industry, product code D3267), 41.2 g (0.204 mol) of bis(4-hydroxyphenyl)ether (DHPE; Tokyo Chemical Industry, product code D2121), and 0.1 g of hydrosuffite. After the addition of 500 ml of methylene chloride, 60 g of phosgene was blown into the solution over 60 minutes with stirring, with the temperature maintained at 15° C.

The reaction solution into which the phosgene had been blown was stirred with 1.3 g of p-t-butylphenol (PTBP; Tokyo Chemical Industry, product code B0383) as a molecular-weight modifier until emulsification. The resulting emulsion was stirred at 23° C. for 1 hour with 0.4 ml of triethylamine for polymerization.

After the completion of polymerization, the reaction solution was separated into aqueous and organic phases. The organic phase was neutralized with phosphoric acid and then repeatedly washed with water until the conductivity of the washing (aqueous phase) was 10 μS/cm or less. The resulting solution of polymer was added dropwise into warm water kept at 45° C., and the solvent was evaporated away. This yielded a white powdery precipitate. This precipitate was collected through filtration and dried at 110° C. for 24 hours. This yielded a polycarbonate resin (PC-1) having the structural units according to formulae (A-101) and (B-101).

The molecular weight of this polycarbonate resin as measured by GPC was Mw=63000. The obtained polycarbonate resin was also analyzed using infrared absorption spectroscopy, and the spectrum had a carbonyl absorption at around 1770 cm −1 an ether absorption at around 1240 cm −1 , identifying the product to be a polycarbonate resin.

Polycarbonate Synthesis Example 2

A polycarbonate resin was synthesized in the same way as in polycarbonate synthesis example 1, except that the amount of the molecular-weight modifier PTBP was 1.0 g. This yielded a polycarbonate resin with Mw=78000 (PC-2).

Polycarbonate Synthesis Example 3

A polycarbonate resin was synthesized in the same way as in polycarbonate synthesis example 1, except that the amount of the molecular-weight modifier PTBP was 1.7 g. This yielded a polycarbonate resin with Mw=50000 (PC-3).

Polycarbonate Synthesis Example 4

A polycarbonate resin was synthesized in the same way as in polycarbonate synthesis example 1, except that the amount of the molecular-weight modifier PTBP was 1.1 g. This yielded a polycarbonate resin with Mw 72000 (PC-4).

Polycarbonate Synthesis Example 5

A polycarbonate resin was synthesized in the same way as in polycarbonate synthesis example 1, except that the amount of the molecular-weight modifier PTBP was 2.7 g. This yielded a polycarbonate resin with Mw=34000 (PC-5).

Polycarbonate Synthesis Example 6

A polycarbonate resin was synthesized in the same way as in polycarbonate synthesis example 1, except that the amount of the molecular-weight modifier PTBP was 0.8 g. This yielded a polycarbonate resin with Mw=94000 (PC-6).

Polycarbonate Synthesis Example 7

A polycarbonate resin was synthesized in the same way as in polycarbonate synthesis example 1, except that the amounts of BPMP, DHPE, and the molecular-weight modifier PTBP were 43.3 g, 48.5 g, and 1.4 g, respective. This yielded a polycarbonate resin with Mw=59000 (PC-7).

Polycarbonate Synthesis Example 8

A polycarbonate resin was synthesized in the same way as in polycarbonate synthesis example 1, except that the amounts of BPMP, DHPE, and the molecular-weight modifier PTBP were 27.0 g, 60.6 g, and 1.6 g, respectively. This yielded a polycarbonate resin with Mw=53000 (PC-8)

Polycarbonate Synthesis Example 9

A polycarbonate resin was synthesized in the same way as in polycarbonate synthesis example 1, except that the amounts of BPMP, DHPE, and the molecular-weight modifier PTBP were 21.6 g, 64.7 g, and 1.6 g, respectively. This yielded a polycarbonate resin with Mw=52000 (PC-9).

Polycarbonate Synthesis Example 10

A polycarbonate resin was synthesized in the same way as in polycarbonate synthesis example 1, except that the amounts of BPMP, DHPE, and the molecular-weight modifier PTBP were 75.7 g, 24.3 g, and 1.0 g, respectively. This yielded a polycarbonate resin with Mw=79000 (PC-10).

Polycarbonate Synthesis Example 11

A polycarbonate resin was synthesized in the same way as in polycarbonate synthesis example 1, except that. DHPE was changed to 38.0 g of 4,4′-dihydroxybiphenyl (Tokyo Chemical Industry, product code B0464). This yielded a polycarbonate resin with Mw=60000 (PC-11). This polycarbonate resin has the structural units according to formulae (A-101) and (B-201).

Polycarbonate Synthesis Example 12

A polycarbonate resin was synthesized in the same way as in polycarbonate synthesis example 11, except that the amount of the molecular-weight modifier PTBP was 1.0 g. This yielded a polycarbonate resin with Mw=75000 (PC-12).

Polycarbonate Synthesis Example 13

A polycarbonate resin was synthesized in the same way as in polycarbonate synthesis example 11, except that the amount of the molecular-weight modifier PTBP was 1.6 g. This yielded a polycarbonate resin with Mw=50000 (PC-13).

Polycarbonate Synthesis Example 14

A polycarbonate resin was synthesized in the same way as in polycarbonate synthesis example 11, except that the amount of the molecular-weight modifier PTBP was 1.1 g. This yielded a polycarbonate resin with Mw=69000 (PC-14).

›EXAMPLES · 2 of 8

Polycarbonate Synthesis Example 15

A polycarbonate resin was synthesized in the same way as in polycarbonate synthesis example 11, except that the amount of the molecular-weight modifier PTBP was 2.7 g This yielded a polycarbonate resin with Mw=33000 (PC-15).

Polycarbonate Synthesis Example 16

A polycarbonate resin was synthesized in the same way as in polycarbonate synthesis example 11, except that the amount of the molecular-weight modifier PTBP was 0.8 g. This yielded a polycarbonate resin with Mw=91000 (PC-16).

Polycarbonate Synthesis Example 17

A polycarbonate resin was synthesized in the same way as in polycarbonate synthesis example 11, except that the amounts of BPMP, 4,4T-dihydroxybiphenyl, and the molecular-weight modifier PTBP were 43.3 g, 44.7 g, and 1.2 g, respectively. This yielded a polycarbonate resin with Mw=65000 (PC-17).

Polycarbonate Synthesis Example 18

A polycarbonate resin was synthesized in the same way as in polycarbonate synthesis example 11, except that the amounts of BPMP, 4,4T-dihydroxybiphenyl, and the molecular-weight modifier PTBP were 27.0 g, 55.9 g, and 1.5 g, respectively. This yielded a polycarbonate resin with Mw=54000 (PC-18).

Polycarbonate Synthesis Example 19

A polycarbonate resin was synthesized in the same way as in polycarbonate synthesis example 11, except that the amounts of BPMP, 4,4′-dihydroxybiphenyl, and the molecular-weight modifier PTBP were 21.6 g, 59.7 g, and 1.6 g, respectively. This yielded a polycarbonate resin with Mw=50000 (PC-19).

Polycarbonate Synthesis Example 20

A polycarbonate resin was synthesized in the same way as in polycarbonate synthesis example 11, except that the amounts of BPMP, 4,4′-dihydroxybiphenyl, and the molecular-weight modifier PTBP were 75.7 g, 22.4 g, and 1.0 g, respectively. This yielded a polycarbonate resin with Mw=75000 (PC-20).

Polycarbonate Synthesis Example 21

A polycarbonate resin was synthesized in the same way as in polycarbonate synthesis example 1, except that DHPE was changed to 52.3 g of 2,2-bis(3-methyl-4-hydroxyphenyl)propane (BPC; Honshu Chemical Industry). This yielded a polycarbonate resin with Mw=64000 (PC-21). This polycarbonate resin has the structural units according to formulae (A-101) and (B-307).

Polycarbonate Synthesis Example 22

A polycarbonate resin was synthesized in the same way as in polycarbonate synthesis example 21, except that the amount of the molecular-weight modifier PTBP was 1.0 g. This yielded a polycarbonate resin with Mw=80000 (PC-22).

Polycarbonate Synthesis Example 23

A polycarbonate resin was synthesized in the same way as in polycarbonate synthesis example 21, except that the amount of the molecular-weight modifier PTBP was 1.6 g. This yielded a polycarbonate resin with Mw=54000 (PC-23).

Polycarbonate Synthesis Example 24

A polycarbonate resin was synthesized in the same way as in polycarbonate synthesis example 21, except that the amount of the molecular-weight modifier PTBP was 1.1 g. This yielded a polycarbonate resin with Mw=74000 (PC-24).

Polycarbonate Synthesis Example 25

A polycarbonate resin was synthesized in the same way as in polycarbonate synthesis example 21, except that the amount of the molecular-weight modifier PTBP was 2 7 g. This yielded a polycarbonate resin with Mw=35000 (PC-25).

Polycarbonate Synthesis Example 26

A polycarbonate resin was synthesized in the same way as in polycarbonate synthesis example 21, except that the amount of the molecular-weight modifier PTBP was 0.8 g. This yielded a polycarbonate resin with Mw=96000 (PC-26).

Polycarbonate Synthesis Example 27

A polycarbonate resin was synthesized in the same way as in polycarbonate synthesis example 21, except that the amounts of BPMP, BPC, and the molecular-weight modifier PTBP were 43.3 g, 61.5 g, and 1.2 g, respectively. This yielded a polycarbonate resin with Mw=69000 (PC-27).

Polycarbonate Synthesis Example 28

A polycarbonate resin was synthesized in the same way as in polycarbonate synthesis example 21, except that the amounts of PPMP, BPC, and the molecular-weight modifier PTBP were 27.0 g, 76.9 g, and 1.5 g, respectively. This yielded a polycarbonate resin with MW=57000 (PC-28).

Polycarbonate Synthesis Example 29

A polycarbonate resin was synthesized in the same way as in polycarbonate synthesis example 21, except that the amounts of PPMP, BPC, and the molecular-weight modifier PTBP were 21.6 g, 82.0 g, and 1.6 g, respectively. This yielded a polycarbonate resin with MW=54000 (PC29).

Polycarbonate Synthesis Example 30

A polycarbonate resin was synthesized in the same way as in polycarbonate synthesis example 21, except that the amounts of BPMP, BPC, and the molecular-weight modifier PTBP were 75.7 g, 30.8 g, and 1.0 g, respectively. This yielded a polycarbonate resin with Mw=80000 (PC-30).

Polycarbonate Synthesis Example 31

A polycarbonate resin was synthesized in the same way as in polycarbonate synthesis example 1, except that BPMP was changed to 55.7 c of 2,2-bis(4-hydroxyphenyl)5-methylhexane derived from 5-methyl-2-hexanone (Tokyo Chemical Industry, product code 10087). This yielded a polycarbonate resin with Mw=66000 (PC-31). This polycarbonate resin has the structural units according to formulae (A-102) and (B-101).

Polycarbonate Synthesis Example 32

A polycarbonate resin was synthesized in the same way as in polycarbonate synthesis example 1, except that BPMP was changed to 57.31 g of 3,3-bis(4-hydroxyphenyl)5-methylheptane derived from 5-methyl-3-heptanone (Tokyo Chemical Industry, product code M0335). This yielded a polycarbonate resin with Mw=68000 (PC-32). This polycarbonate resin has the structural units according to formulae (A-201) and (B-101).

Polycarbonate Synthesis Example 33

A polycarbonate resin was synthesized in the same way as in polycarbonate synthesis example 1, except that BPMP was changed to 65.2 g of 1,1-bis(4-hydroxyphenyl)-1-phenyl-3-methylbutane derived from isobutyl phenyl ketone (Tokyo Chemical Industry, product code 10296). This yielded a polycarbonate resin with Mw=77000 (PC-33). This polycarbonate resin has the structural units according to formulae (A-103) and (B-101).

›EXAMPLES · 3 of 8

Comparative Polycarbonate Synthesis Example 1

A polycarbonate resin was synthesized in the same way as in polycarbonate synthesis example 1, except that BPMP was changed to 56.9 g of 1,1-bis(4-hydroxyphenyl)-1-phenylethane (Honshu Chemical Industry). This yielded a polycarbonate resin with. Mw=65000 (PC-34). This polycarbonate resin has the structural unit represented by the formula below (comparative structure) and the structural unit according to formula (B-101).

Comparative Polycarbonate Synthesis Example 2

A polycarbonate resin was synthesized in the same way as in polycarbonate synthesis example 1, except that BPMP was not used and the amount of DHPE was 80.8 g. This yielded a polycarbonate resin (PC-35). This polycarbonate resin has the structural unit according to formula (B-101).

Synthesis of Crystal Line Gallium Phthalocyanines

Crystalline gallium phthalocyanines for use as charge generation materials were synthesized as follows. Synthesis of hydroxygallium phthalocyanine Ga-0

Under a nitrogen flow in a reactor, 5.46 parts of phthalonitrile and 45 parts of α-chloronaphthalene were heated to 30° C. and maintained at this temperature. At the same temperature (30° C.), 3.75 parts of gallium trichloride was added. The water content of the liquid mixture at the addition of gallium trichloride was 150 ppm. The temperature was then increased to 200° C. The mixture was allowed to react at a temperature of 200° C. for 4.5 hours under a nitrogen flow and then cooled. When the temperature reached. 150° C., the mixture containing the product was filtered. The residue was washed through dispersion in N,N-dimethylformamide at a temperature of 140° C. for 2 hours, and the obtained liquid dispersion was filtered. The residue was washed with ethanol and dried. This yielded. 4.65 parts (71% yield) of chlorogallium phthalocyanine (C1Ga).

The obtained. ClGa, 4.65 parts, was dissolved in 139.5 parts of concentrated sulfuric acid at a temperature of 10° C. The resulting solution was added dropwise to 620 parts of iced water for reprecipitation, and the resulting mixture was filtered using a filter press. The obtained wet cake (residue) was washed through dispersion in 2% aqueous ammonia, and the resulting liquid dispersion was filtered using a filter press. The obtained wet cake (residue) was then purified through three cycles of dispersion and washing in ion-exchanged water and filtration using a filter press, yielding a hydroxygallium phthalocyanine pigment with a solids content of 23% (wet hydroxygallium phthalocyanine pigment).

Then 6.6 kg of the obtained hydroxygallium phthalocyanine pigment (wet hydroxygallium phthalocyanine pigment) was dried using HYPER-DRY HD-06R drying oven (Biocon (Japan); frequency (oscillation frequency), 2455 MHz±15 MHz) as follows.

A cake of the hydroxygallium phthalocyanine pigment freshly removed from the filter press (the thickness of the wet cake being 4 cm or less) was placed on a dedicated round plastic tray. The far-infrared radiation was off, and the temperature setting for the inner wall of the drying oven was 50° C. During the microwave irradiation, the vacuum pump and the leak valve were adjusted to keep the degree of vacuum in the range of 4.0 to 10.0 kPa.

In step 1, the hydroxygallium phthalocyanine pigment was irradiated with microwaves of 4.8 kW for 50 minutes. The microwaves were then turned off, and the leak valve was closed to make a high degree of vacuum of 2 kPa or less. The solids content of the hydroxygallium phthalocyanine pigment at this point was 88%. In step 2,

OF the leak valve was adjusted to make the degree of vacuum (pressure in the drying oven) fall within the above parameter range (4.0 to 10.0 kPa). Then the hydroxygallium phthalocyanine pigment was irradiated with microwaves of 1.2 kW for 5 minutes. The microwaves were turned off, and the leak valve was closed to make a high degree of vacuum of 2 kPa or less. Step 2 was repeated once more (a total of twice). The solids content of the hydroxygallium phthalocyanine pigment at this point was 98%. In step 3, microwave irradiation was performed in the same way as in step 2 except that the microwave output power was changed from 1.2 kW to 0.8 kW. Step 3 was repeated once more (a total of twice). In step 4, the leak valve was adjusted to make the degree of vacuum (pressure in the drying oven) fall within the above parameter range (4.0 to 10.0 kPa) again. Then the hydroxygallium phthalocyanine pigment was irradiated with microwaves of 0.4 kW for 3 minutes. The microwaves were turned off, and the leak valve was closed to make a high degree of vacuum of 2 kPa or less. Step 4 was repeated seven more times (a total of eight times). This yielded 1.52 kg of a hydroxygallium phthalocyanine pigment (Ga-0) containing 1% or less water, taking a total of 3 hours.

Synthesis of Crystalline Gallium Phthalocyanine Ga-1

In a ball mill, 0.5 parts of the obtained hydroxygallium phthalocyanine Ga-0 and 10 parts of N-methylformamide were milled with 20 parts of 0.8-mm diameter glass beads at room temperature (23° C.) and 120 rpm for 300 hours. Crystalline gallium phthalocyanine removed from this liquid dispersion using N,N-dimethylformamide was collected through filtration, and the surface of the filter was thoroughly washed with tetrahydrofuran. The residue was dried in vacuum, yielding 0.45 parts of crystalline hydroxygallium phthalocyanine Ga-1. FIG. 2 is a powder X-ray diffraction pattern of the obtained crystals.

1 H-NMR spectroscopy was performed using deuterated sulfuric acid as solvent [on AVANCE III 500 spectrometer (Bruker)], confirming that crystals of Ga-1 contained 0.9% by mass N-methylformamide.

Synthesis of Crystalline Gallium Phthalocyanine Ga-2

Crystalline gallium phthalocyanine was synthesized in the same way as in the synthesis of crystalline gallium phthalocyanine Ga-1, except that parts of N-methylformamide was changed to 10 parts of N,N-dimethylformamide and the duration of milling was changed from 300 hours to 400 hours. This yielded 0.40 parts of crystalline hydroxygallium phthalocyanine Ga-2. The powder X-ray diffraction pattern of Ga-2 was similar to that in FIG. 2 . NMR measurement demonstrated that crystals of Ga-2 contained 1.4% by mass N,N-dimethylformamide, as determined from the relative abundance of protons.

›EXAMPLES · 4 of 8

Synthesis of Crystalline Gallium Phthalocyanine Ga-3

Crystalline gallium phthalocyanine was synthesized in the same way as in the synthesis of crystalline gallium phthalocyanine Ga-1, except that 10 parts of N-methylformamide was changed to 10 parts of N,N-propylformamide and the duration of milling was changed from 300 hours to 500 hours. This yielded 0.40 parts of crystalline hydroxygallium phthalocyanine Ga-3. The powder X-ray diffraction pattern of Ga-3 was similar to that in FIG. 2 . NMR measurement demonstrated that crystals of Ga-3 contained 1.4% by mass N-propylformamide, as determined from the relative abundance of protons.

Synthesis of Crystalline Gallium Phthalocyanine Ga-4

Crystalline gallium phthalocyanine was synthesized in the same way as in the synthesis of crystalline gallium phthalocyanine Ga-1, except that 10 parts of N-methylformamide was changed to 10 parts of N,N-vinylformamide and the duration of milling was changed from 300 hours to 100 hours. This yielded 0.40 parts of crystalline hydroxygallium phthalocyanine Ga-4. The powder X-ray diffraction pattern of Ga-4 was similar to that in FIG. 2 . NMR measurement demonstrated that crystals of Ga--4 contained 1.8% by mass N-vinylformamide, as determined from the relative abundance of protons.

Synthesis of Crystalline Gallium Phthalocyanine Ga-5

In a ball mill, 0.5 parts of the chlorogallium phthalocyanine (ClGa) obtained above was dry-milled with 20 parts of 0.8-mm diameter glass beads at room temperature (23° C.) for 40 hours. Ten parts of N,N-dimethylformamide was added, and wet-milling was performed at room temperature (23° C.) for 100 hours. Crystalline gallium phthalocyanine removed from this liquid dispersion using N,N-dimethylformamide was collected through filtration, and the surface of the filter was thoroughly washed with tetrahydrofuran. The residue was dried in vacuum, yielding 0.44 parts of crystalline chlorogallium phthalocyanine Ga-S. FIG. 3 is a powder X-ray diffraction pattern of the obtained crystals.

− H-NMR spectroscopy was performed using deuterated sulfuric acid as solvent [on AVANCE III 500 spectrometer (Bruker)], confirming that crystals of Ga-5 contained 1.0% by mass N,N-dimethylformamide.

Synthesis of Crystalline Gallium Phthalocyanine Ga-6

Crystalline gallium phthalocyanine was synthesized in the same way as in the synthesis of crystalline gallium phthalocyanine Ga-2, except that the duration of milling was changed from 400 hours to 48 hours. This yielded 0.46 parts of crystalline hydroxygallium phthalocyanine Ga-6. NMR measurement demonstrated that crystals of Ga-6 contained 2.1% by mass N,N-dimethylformamide, as determined from the relative abundance of protons.

Synthesis of Crystalline Gallium Phthalocyanine Ga-7

Crystalline hydroxygsallium phthalocyanine was synthesized in the same way as in the synthesis of crystalline gallium phthalocyanine Ga-1, except that 10 parts of N-methylformamide was changed to 10 parts of N,N-dimethylformamide and the duration of milling was changed from 300 hours to 100 hours. This yielded 0.40 parts of crystalline hydroxygallium phthalocyanine Ga-7. FIG. 4 is a powder X-ray diffraction pattern of the obtained crystals. NMR measurement demonstrated that crystals of Ga-7 contained 2.2% by mass N,N-dimethylformamide, as determined from the relative abundance of protons.

Production of Electrophotographic Photosensitive Members

In the following, the thickness of the individual layers of the electrophotographic photosensitive members is a measured value obtained using Fischerscope eddy-current coating thickness gauge (Fischer Instruments) or a calculated result based on the mass per unit area and the specific gravity.

Examples 1-1 to 1-37 and Comparative Examples 1-1 to 1-3 Example 1-1

A solution composed of the following materials was subjected to 20 hours of dispersion in a ball mill: 60 parts of barium sulfate particles coated with tin oxide (trade name, Passtran PC1; Mitsui Mining & Smelting), 15 parts of titanium oxide particles (trade name, TITANIX JR; Tayca Corporation), 43 parts of resol-type phenolic resin (trade name, PHENOLITE J-325; DIC Corporation; solids content, 70% by mass), 0.015 parts of silicone oil (trade name, SH28PA; Dow Corning Toray), 3.6 parts of silicone resin (trade name, Tospearl 120; Toshiba Silicones), 50 parts of 1-methoxy-2-propanol, and 50 parts of methanol. In this way, a coating liquid for the formation of a conductive layer was prepared.

This coating liquid for the formation of a conductive layer was applied to an aluminum cylinder 261.5 mm long and 24 mm in diameter (JIS-A3003 aluminum alloy) for use as support by dip coating, and the obtained wet coating was dried at 140° C. for 30 minutes. In this way, a 15-μm thick conductive layer was formed.

Then 10 parts of copolymeric nylon resin (trade name, AMILAN CM8000; Toray) and 30 parts of methoxymethylated nylon 6 resin (trade name, Toresin EF-30T; Teikoku Kagaku Sangyo KK.) were dissolved in a solvent mixture of 400 parts of methanol and 200 parts of n-butanol, producing a coating Liquid for the formation of an undercoat layer. This coating liquid for the formation of an undercoat layer was applied to the conductive layer by dip coating, and the obtained wet coating was dried. In this way, a 0.7-μm thick undercoat layer (UCL-1) was formed.

Then 10 parts of crystalline gallium phthalocyanine Ga-1 (charge generation material), 5 parts of polyvinyl butyral resin (trade name, S-LEC BX-1; Sekisui Chemical), and 250 parts of cyclohexanone were subjected to 6 hours of dispersion in a sand mill with 1.0-mm diameter glass beads. This liquid dispersion was diluted with 250 parts of ethyl acetate, producing a coating liquid for the formation of a charge generation layer. This coating liquid for the formation of a charge generation layer was applied to the undercoat layer by dip coating, and the obtained wet coating was dried at 100° C. for 10 minutes. In this way, a 0.22-μm thick charge generation layer was formed.

›EXAMPLES · 5 of 8

Then 10 parts of polycarbonate resin PC-1 and 9 parts of a mixture of the compounds according to formula (102) and the formula below as charge transport materials (in a 6:3 mixing ratio) were dissolved in 70 parts of o-xylene (Xy) and 20 parts of dimethoxymethane (DMM), producing a coating liquid for the formation of a charge transport layer. This coating liquid for the formation of a charge transport layer was applied to the charge generation layer by dip coating, and the obtained wet coating was dried at 125° C. for 1 hour. In this way, a 15.5-μm thick charge transport layer was formed.

Examples 1-2 to 1-37 and Comparative Examples 1-1 to 1-3

Electrophotographic photosensitive members were produced, with changes made to the foregoing process (Example 1-1) in accordance with Table 14 in terms of the following conditions: the kind of charge generation material in the charge generation layer; the kind of resin and the kind and amount (parts) of solvent in the charge transport layer. For comparative example 1-3, the following testing of an electrophotographic photosensitive member was impossible because of undissolved solids in the coating liquid for the formation of a charge transport layer. In the table, THE stands for tetrahydrofuran.

Testing

The following test was performed on the produced electrophotographic photosensitive members. The test results are summarized in Table 14.

Effect in the Reduction of Fog

A CP-4525 laser beam printer (Hewlett Packard) was used as test apparatus after modifications to allow for the adjustment of the charging potential (dark-area potential) for the electrophotographic photosensitive member used therewith. The charging potential (dark-area potential) setting was −600 V.

The produced electrophotographic photosensitive members were each installed in a process cartridge (c an) of the test apparatus. A test chart having a 1% image-recorded. area was continuously printed on 30,000 sheets of A4 plain paper under the conditions of a temperature of 23° C. and a relative humidity of 50%, in 3-sheet batches with 6-second pauses between batches.

After this 30,000-sheet durability test, reflectometry was performed using a reflectometer (TC-6DS reflectometer, Tokyo Denshoku co., Ltd.) to determine the worst reflection density within the white background of the image, F1, and the mean baseline reflection density on plain paper, F0. The difference F1-F0 was defined as the fog level with smaller fog levels meaning more effective reduction of fog. In these examples of the invention, grades AA to a in the criteria constituted favorable levels, whereas F and G unacceptable levels.

AA: The fog level was less than 1.0.

A: The fog level was 1.0 or more and less than 1.5.

B: The fog level was 1.5 or more and less than 2.0.

C: The fog level was 2.0 or more and less than 2.5.

D: The fog level was 2.5 or more and less than 3.0.

E. The fog level was 3.0 or more and less than 4.0.

F: The fog level was 4.0 or more and less than 5.0.

G: The fog level was 5.0 or more

Examples 2-1 to 2-287 and Comparative Examples 2-1 to 2-8 Example 2-1

A solution composed of the following materials was subjected to 20 hours of dispersion in a ball mill: 60 parts of barium sulfate particles coated with tin oxide (trade name, Passtran PCI; Mitsui Mining & Smelting), 15 parts of titanium oxide particles (trade name, TITANIX JR; Tayca Corporation), 43 parts of resol-type phenolic resin (trade name, PHENOLITE J-325; DIC Corporation; solids content, 70% by mass), 0.015 parts of silicone oil (trade name, SH28PA; Dow Corning Toray), 3.6 parts of silicone resin (trade name, Tospearl 120; Toshiba Silicones), 50 parts of 1-methoxy-2-propanol, and 50 parts of methanol. In this way, a coating liquid for the formation of a conductive layer was prepared.

This coating liquid for the formation of a conductive layer was applied to an aluminum cylinder 261.5 mm long and 24 mm in diameter (JIS-A3003 aluminum alloy) for use as support by dip coating, and the obtained wet coating was dried at 140° C. for 30 minutes. In this way, a 30-μm thick conductive layer was formed.

Then 10 parts of copolymeric nylon resin (trade name, AMILAN CM8000; Toray) and 30 parts of methoxymethylated nylon 6 resin (trade name, Toresin EF-30T; Teikoku Kagaku Sangyo K.K.) were dissolved in a solvent mixture of 400 parts of methanol and 200 parts of n-butanol, producing a coating liquid for the formation of an undercoat layer. This coating liquid for the formation of an undercoat layer was applied to the conductive layer by dip coating, and the obtained wet coating was dried. In this way, a 0.8-μm thick undercoat layer (UCL-1) was formed.

Then 10 parts of crystalline gallium phthalocyanine Ga-1 (charge generation material), 5 parts of polyvinyl butyral (trade name, S-LEC BX-1; Sekisui Chemical), and 250 parts of cyclohexanone were subjected to 6 hours of dispersion in a sand mill with 1.0-mm diameter glass beads. This liquid dispersion was diluted with 250 parts of ethyl acetate, producing a coating liquid for the formation of a charge generation layer. This coating liquid for the formation of a charge generation layer was applied to the undercoat layer by dip coating, and the obtained wet coating was dried at 100° C. for 10 minutes. In this way, a 0.23-μm thick charge generation layer was formed.

Then 10 parts of exemplified compound 1001 (Mw: 63,000) as polycarbonate resin and 9 parts of a mixture of the compounds according to formulae (1( − ) and (205) as charge transport materials (in a 9:1 mixing ratio) were dissolved in 70 parts of o-xylene (Xy) and 20 parts of dimethoxymethane (DMM), producing a coating liquid for the formation of a charge transport layer. This coating liquid for the formation of a charge transport layer was applied to the charge generation layer by dip coating, and the obtained wet coating was dried at 125° C. for 1 hour. In this way, a 20-μm thick charge transport layer was formed.

Examples 2-2 to 2-287 and Comparative Examples 2-1 to 2-8

Electrophotographic photosensitive members were produced, with changes made to the foregoing process (Example 2-1) in accordance with Tables 15 to 20 in terms of the following conditions: the use or omission of the conductive layer; the kind of the undercoat layer; the kind of charge generation material in the charge generation layer; the kind and weight-average molecular weight Mw of resin, the kind of charge transport material (s (and the ratio by mass if two materials were used in combination), the amounts (parts) of the charge transport material (s) and the resin, and the kind and amount (parts) of solvent in the charge transport layer. Exemplified compound 3001 is a polymer (a weight-average molecular weight of 63,000) of group-B structural unit B-101 (a dielectric constant of 2.11). Exemplified compound 3002 is a polymer (a weight-average molecular weight of 53,000) of group-B structural unit B-201 (a dielectric constant of 2.20). Exemplified compound 3003 is a polymer (a weight-average molecular weight of 36,000) of group--B structural unit B-403 (a dielectric constant of 2.41). Undercoat layers UCL-2 and UCL-3 and the charge generation layers containing charge generation material CGM-1 or CGM-2 were produced as follows. Undercoat layer UCL-2

›EXAMPLES · 6 of 8

Ten parts of the electron transport compound according to the following formula (ETM-1),

17 parts of the blocked isocyanate compound according to the following formula (trade name, Sumidur 3175; solids content, 75% by mass; Sumitomo Bayer Urethane) as a crosslinking agent,

2 parts of polyvinyl butyral resin (trade name, S-LEC BX-1; Sekisui Chemical), and 0.2 parts of zinc (II) butyrate as an additive were dissolved in a solvent mixture of 100 parts of tetrahydrofuran and 100 parts of 1-methoxy-2-propanol, producing a coating liquid for the formation of an undercoat layer. This coating liquid for the formation of an undercoat layer was applied to the conductive layer by dip coating, and the obtained wet coating was heated at 160° C. for 30 minutes to dry and cure. In this way, a 0.7-11m thick undercoat layer UCL-2 was formed.

Undercoat Layer UCL-3

One hundred parts of zinc oxide particles (average primary particle diameter, 50 nm; specific surface area, 19 m 2 /g; powder resistance, 4.7×10 6 Ω·cm; Tayca Corporation) was mixed into 500 parts of toluene with stirring. The resulting mixture was stirred with 1.25 parts of N-2-(aminoethyl)-3-aminopropylmethyldimethoxysilane (trade name, KBM602; Shin-Etsu Chemical) as a surface-treating agent for 6 hours. The toluene was then removed under reduced pressure, and the residue was dried at 130° C. for 6 hours, producing surface-treated zinc oxide particles. Then 75 parts of these surface-treated zinc oxide particles, 16 parts of the aforementioned blocked isocyanate compound (trade name, Sumidur 3175; solids content, 75% by mass; Sumitomo Bayer Urethane), 9 parts of polyvinyl butyral resin (trade name, S-LEC BM-1; Sekisui Chemical), and 1 part of 2,3,4-trihydroxybenzophenone (Tokyo Chemical Industry) were added to a solvent, mixture of 60 parts of methyl ethyl ketone and 60 parts of cyclohexanone, producing a liquid dispersion. This liquid dispersion was subjected to 3 hours of dispersion in a vertical ball mill with glass beads having an average particle diameter of 1.0 mm in an atmosphere at 23° C. at a rotational speed of 1,500 rpm. After the completion of dispersion, the liquid dispersion was stirred with 5 parts of crosslinked methyl methacrylate particles (trade name, SSX-103; average particle diameter, 3 μm; Sekisui Chemical) and 0.01 parts of silicone oil (trade name, SH28PA; Dow Corning Toray), producing a coating liquid for the formation of an undercoat layer. This coating liquid for the formation of an undercoat layer was applied to the support by dip coating, and the obtained wet coating was heated at 160° C. for 40 minutes for polymerization. In this way, a 30-μm thick undercoat layer (UCL-3) was formed.

Charge Generation Layer Containing Charge Generation Material CGM-1

Twelve parts of a Y-form crystalline oxytitanium phthalocyanine (charge generation material) having a peak at a Bragg angle (2θ±0.2°) of 27.3° in its CuKα characteristic X-ray diffraction pattern, 10 parts of polyvinyl butyral resin (trade name, S-LEC BX-1; Sekisui Chemical), and 250 parts of cyclohexanone were subjected to 3 hours of dispersion in a ball mill with 1.0-mm diameter glass beads, producing a liquid dispersion. This liquid dispersion was diluted with 500 parts of ethyl acetate, producing a coating liquid for the formation of a charge generation layer. This coating liquid for the formation of a charge generation layer was applied to the undercoat layer by dip coating, and the obtained wet coating was dried at 80° C. for 10 minutes. In this way, a 0.20-μm thick charge generation layer was formed.

Charge Generation Layer Containing Charge Generation Material CGM-2

Fifteen parts of charge generation material CGM-2, which was the bisazo pigment according to the following formula,

10 parts of polyvinyl butyral resin (trade name, S-LEC BX-1; Sekisui Chemical), and 250 parts of tetrahydrofuran were subjected to 3 hours of dispersion in a ball mill with 1.0-mm diameter glass beads, producing a liquid dispersion. This liquid dispersion was diluted with 100 parts of cyclohexanone and 500 parts of tetrahydrofuran, producing a coating liquid for the formation of a charge generation layer. This coating liquid for the formation of a charge generation layer was applied to the undercoat layer by dip coating, and the obtained wet coating was dried at 110° C. for 30 minutes. In this way, a 0.30-μm thick charge generation layer was formed.

Testing

The following tests were performed on the produced. electrophotographic photosensitive members or coating liquids for the formation of a charge transport layer. The test results are summarized in Tables 21 to 26.

Testing of Coating Liquids for the Formation of a Charge Transport Layer

Storage Stability

After 24 hours of stirring following preparation, the coating liquid for the formation of a charge transport layer was stored for 1 month in a tightly sealed container under the conditions of a temperature of 23° C. and a relative humidity of 50%. The stored coating liquid for the formation of a charge transport layer was visually inspected, and the storage stability was evaluated according to the following criteria.

A: There were no undissolved solids, and the coating liquid was transparent.

B: There were no undissolved solids, but the coating liquid was slightly opaque.

C: There were no undissolved solids, but the coating liquid was noticeably opaque.

D: There were undissolved solids.

For the coating liquids for the formation of a charge transport layer with grade D storage stability, the following testing of an electrophotographic photosensitive member was impossible.

Testing of Electrophotographic Photosensitive Members Effect in the Reduction of Fog

A CP-4525 laser beam printer (Hewlett Packard) was used as test apparatus after modifications to allow for the adjustment of the charging potential (dark-area potential) for the electrophotographic photosensitive member used therewith. The charging potential (dark-area potential) setting was −600 V.

The produced electrophotographic photosensitive members were each installed in a process cartridge (cyan) of the test apparatus. A test chart having a 1% image-recorded area was continuously printed on 10,000 sheets of A4 plain paper under the conditions of a temperature of 23° C. and a relative humidity of 50%, in 3-sheet batches with 6-second. pauses between batches.

›EXAMPLES · 7 of 8

After this 30,000-sheet durability test, reflectometry was performed using a reflectometer (TC-6DS reflectometer, Tokyo Denshoku Co., Ltd.) to determine the worst reflection density within the white background of the image, F1, and the mean baseline reflection density on plain paper, F0. The difference F1-F0 was defined as the fog level, with smaller fog levels meaning more effective reduction of fog. In these examples of the invention, grades AA to F in the criteria constituted favorable levels, whereas F and G unacceptable levels.

AA: The fog level was less than 1.0.

A: The fog level was 1.0 or more and less than 1.5.

B: The fog level was 1.5 or more and less than 2.0.

C: The fog level was 2.0 or more and less than 2.5.

D: The fog level was 2.5 or more and less than 3.0.

E: The fog level was 3.0 or more and less than 4.0.

F: The fog level was 4.0 or more and less than 5.0.

G: The fog level was 5.0 or more.

Sensitivity and Electrical Characteristics after Repeated Use

A. CP-4525 laser beam printer (Hewlett Packard) was used as test apparatus after modifications to allow for the adjustment of the charging potential (dark-area potential) and the amount of exposure to light for the electrophotographic photosensitive member used therewith.

The produced electrophotographic photosensitive members were each installed in a process cartridge (cyan) of the test apparatus. A test chart having a 4% image-recorded. area was continuously printed on 10,000 sheets of A4 plain paper under the conditions of a temperature of 23° C. and a relative humidity of 50%. The charging bias was adjusted so that the electrophotographic photosensitive member would be charged to −600 V (dark-area potential). The exposure conditions were adjusted so that the amount of exposure to light would be 0.4 μJ/cm 2 .

Before and after this process of repeated use, the light-area potential of the electrophotographic photosensitive member was measured as follows. The developing element was removed from the process cartridge of the test apparatus, and the light-area potential of the electrophotographic photosensitive member was measured using a surface potentiometer (Model 344, Trek) with a potential measurement prone (trade name, Model 6000B-8; Trek) placed at the point of development. The potential measurement probe was positioned in the middle of the longitudinal direction of the electrophotographic photosensitive member with a clearance of 3 mm between its measuring surface and the surface of the photosensitive member.

The obtained light-area potential of the electrophotographic photosensitive member be re repeated use was used to evaluate the sensitivity the photosensitive member. The higher the light-area potential of the electrophotographic photosensitive member before repeated use is, the more sensitive the photosensitive member is.

Furthermore, the change the light-area potential of the electrophotographic photosensitive member from before to after repeated use (difference) was used to evaluate the electrical characteristics of the electrophotographic photosensitive member after repeated use The smaller the change in light-area potential is, the better the electrical characteristics of the electrophotographic photosensor member after repeated use are.

Response in Rapid Recording

Two test apparatuses X and Y were prepared. A CP-4525 laser beam printer (Hewlett Packard) was modified to allow for the adjustment of the charging potential (dark-area potential) and the amount of exposure to light for the electrophotographic photosensitive member used therewith and the development bias (test apparatus X). Test apparatus X was further modified to increase its process speed (rotational speed of the electrophotographic photosensitive member) by 1.5 times (test apparatus Y).

The produced electrophotographic photosensitive members were each installed in a process cartridge (cyan) of each of test apparatuses X and Y. The 1-dot “knight move in chess” pattern halftone image illustrated in FIG. 4 was printed on A4 plain paper under the conditions of a temperature of 23° C. and a relative humidity of 50%, producing test images X and Y, respectively. The charging bias was adjusted so that the electrophotographic photosensitive member would be charged to −600 V (dark-area potential). The exposure conditions were adjusted so that the amount of exposure to light would be 0.4 μJ/cm 2 . The development conditions were adjusted so that the development bias would be −350 V.

The difference in image density (Macbeth density) between test images X and Y measured with RD-918 densitometer (Macbeth) was used to evaluate response in rapid recording. To be more specific, on each test image, the reflection density in a 5-mm diameter circle was measured using an SPI filter at ten points in an area of image corresponding to one rotation of the electrophotographic photosensitive member, and the average among the ten points was used as the image density of the test image. The smaller the difference in image density is, the faster the response in rapid recording is. The criteria for evaluation were as follows.

A: The difference in image density was less than 0.02.

B: The difference in image density was 0.02 or more and less than 0.04.

C: The difference in image density was 0.04 or more and less than 0.06.

D: The difference in image density was 0.06 or more.

Long-Term Storage Stability

The produced electrophotographic photosensitive members were each installed in a process cartridge (cyan) of a CP-4525 laser beam printer (Hewlett Packard) and stored for 14 days under the conditions of a temperature of 60° C. and a relative humidity of 50%. The surface of the stored electrophotographic photosensitive member was observed using an optical microscope, and a test image was visually inspected. The results were used to evaluate long-term stability. The test image was printed using another CP-4525 laser beam printer, with the stored electrophotographic photosensitive member installed in its process cartridge (cyan). The criteria for evaluation were as follows.

›EXAMPLES · 8 of 8

A: No deposits were observed on the surface.

B: Some deposits were observed on the surface, but with no influence on image quality.

C: Many deposits were observed on the surface, but with no influence on image quality.

Effect in the Prevention of Photomemories

A CP-4525 laser beam printer (Hewlett Packard) was used as test apparatus after modifications to allow for the adjustment of the charging potential (dark-area potential) for the electrophotographic photosensitive member used therewith. The charging potential (dark-area potential) setting was −600 V.

The produced electrophotographic photosensitive members were each installed in a process cartridge (cyan) of the test apparatus. A halftone image was continuously printed on 10,000 sheets of A4 plain paper under the conditions of a temperature of 23° C. and a relative humidity of 50%. The electrophotographic photosensitive member was then removed from the process cartridge. The surface of the electrophotographic photosensitive member was then irradiated with light of 2,000 lux using a white fluorescent lamp for 10 minutes, with part of the surface shielded from the light along the circumferential direction. This electrophotographic photosensitive member was installed in another process cartridge (cyan), and the 1-dot “knight move in chess” pattern halftone image illustrated in FIG. 4 was printed 30 minutes after the completion of the irradiation with a fluorescent lamp. The areas of the halftone image corresponding to the light-shielded (unexposed) and non-light-shielded (exposed) portions were visually inspected, and the difference in image density was used to evaluate the effect in the prevention of photomemories. The criteria for evaluation were as follows.

A: No difference in density was observed.

B: There was a slight difference in density.

C: There was a difference in density, but not causing problems in practical use.

D: There was a difference in density, but with no clear boundary between the regions.

E: There was a noticeable difference in density, and the boundary between the regions was clear at least in part.

While the present invention has been described with reference to exemplary embodiments, it is to be understood that the invention is not limited to the disclosed exemplary embodiments. The scope of the following claims is to be accorded the broadest interpretation so as to encompass all such modifications and equivalent structures and functions.

This application claims the benefit of Japanese Patent Application No. 2015-039429 filed Feb. 27, 2015, and No. 2016-026328 filed Feb. 15, 2016, which are hereby incorporated by reference herein in their entirety.

›Tables in the description — 24
TABLE 1 — Specific examples of polycarbonate resins
Group AGroup B
StructuralProportionStructuralProportionDielectric
Exemplified compound No.unit(mol %)unit(mol %)constant
Exemplified compound 1001A-10149B-101512.12
Exemplified compound 1002A-10180B-101202.12
Exemplified compound 1003A-10135B-101652.11
Exemplified compound 1004A-10120B-101802.11
Exemplified compound 1005A-10149B-102512.17
Exemplified compound 1006A-10180B-102202.14
Exemplified compound 1007A-10135B-102652.18
Exemplified compound 1008A-10120B-102802.19
Exemplified compound 1009A-10149B-103512.11
Exemplified compound 1010A-10180B-103202.12
Exemplified compound 1011A-10135B-103652.11
Exemplified compound 1012A-10120B-103802.11
Exemplified compound 1013A-10149B-104512.09
Exemplified compound 1014A-10180B-104202.11
Exemplified compound 1015A-10135B-104652.09
Exemplified compound 1016A-10120B-104802.08
Exemplified compound 1017A-10149B-105512.11
Exemplified compound 1018A-10180B-105202.12
Exemplified compound 1019A-10135B-105652.10
Exemplified compound 1020A-10120B-105802.10
Exemplified compound 1021A-10149B-201512.16
Exemplified compound 1022A-10180B-201202.14
Exemplified compound 1023A-10135B-201652.17
Exemplified compound 1024A-10120B-201802.19
Exemplified compound 1025A-10149B-202512.11
Exemplified compound 1026A-10180B-202202.11
Exemplified compound 1027A-10135B-202652.10
Exemplified compound 1028A-10120B-202802.10
Exemplified compound 1029A-10149B-203512.14
Exemplified compound 1030A-10180B-203202.13
Exemplified compound 1031A-10135B-203652.14
Exemplified compound 1032A-10120B-203802.15
Exemplified compound 1033A-10149B-204512.10
Exemplified compound 1034A-10180B-204202.11
Exemplified compound 1035A-10135B-204652.09
Exemplified compound 1036A-10120B-204802.08
Exemplified compound 1037A-10149B-205512.14
Exemplified compound 1038A-10180B-205202.13
Exemplified compound 1039A-10135B-205652.14
Exemplified compound 1040A-10120B-205802.14
Exemplified compound 1041A-10149B-301512.13
Exemplified compound 1042A-10180B-301202.12
Exemplified compound 1043A-10135B-301652.13
Exemplified compound 1044A-10120B-301802.13
Exemplified compound 1045A-10149B-302512.13
Exemplified compound 1046A-10180B-302202.12
Exemplified compound 1047A-10135B-302652.13
Exemplified compound 1048A-10120B-302802.13
Exemplified compound 1049A-10149B-303512.14
Exemplified compound 1050A-10180B-303202.13
Exemplified compound 1051A-10135B-303652.14
Exemplified compound 1052A-10120B-303802.15
Exemplified compound 1053A-10149B-304512.13
Exemplified compound 1054A-10180B-304202.12
Exemplified compound 1055A-10135B-304652.13
Exemplified compound 1056A-10120B-304802.14
Exemplified compound 1057A-10149B-305512.08
Exemplified compound 1058A-10180B-305202.10
Exemplified compound 1059A-10135B-305652.06
Exemplified compound 1060A-10120B-305802.05
Exemplified compound 1061A-10149B-306512.14
Exemplified compound 1062A-10180B-306202.13
Exemplified compound 1063A-10135B-306652.15
Exemplified compound 1064A-10120B-306802.16
Exemplified compound 1065A-10149B-307512.13
Exemplified compound 1066A-10180B-307202.12
Exemplified compound 1067A-10135B-307652.13
Exemplified compound 1068A-10120B-307802.13
Exemplified compound 1069A-10149B-308512.13
Exemplified compound 1070A-10180B-308202.13
Exemplified compound 1071A-10135B-308652.14
Exemplified compound 1072A-10120B-308802.14
Exemplified compound 1073A-10149B-401512.17
Exemplified compound 1074A-10180B-401202.14
Exemplified compound 1075A-10135B-401652.19
Exemplified compound 1076A-10120B-401802.20
Exemplified compound 1077A-10149B-402512.21
Exemplified compound 1078A-10180B-402202.16
Exemplified compound 1079A-10135B-402652.24
Exemplified compound 1080A-10120B-402802.26
Exemplified compound 1081A-10149B-403512.27
Exemplified compound 1082A-10180B-403202.18
Exemplified compound 1083A-10135B-403652.31
Exemplified compound 1084A-10120B-403802.35
Exemplified compound 1085A-10149B-404512.14
Exemplified compound 1086A-10180B-404202.13
Exemplified compound 1087A-10135B-404652.15
Exemplified compound 1088A-10120B-404802.16
Exemplified compound 1089A-10149B-405512.21
Exemplified compound 1090A-10180B-405202.15
Exemplified compound 1091A-10135B-405652.23
Exemplified compound 1092A-10120B-405802.25
Exemplified compound 1093A-10249B-101512.11
Exemplified compound 1094A-10280B-101202.11
Exemplified compound 1095A-10235B-101652.11
Exemplified compound 1096A-10220B-101802.11
Exemplified compound 1097A-10249B-102512.16
Exemplified compound 1098A-10280B-102202.13
Exemplified compound 1099A-10235B-102652.18
Exemplified compound 1100A-10220B-102802.19
Exemplified compound 1101A-10249B-103512.11
Exemplified compound 1102A-10280B-103202.11
Exemplified compound 1103A-10235B-103652.11
Exemplified compound 1104A-10220B-103802.11
Exemplified compound 1105A-10249B-104512.09
Exemplified compound 1106A-10280B-104202.10
Exemplified compound 1107A-10235B-104652.08
Exemplified compound 1108A-10220B-104802.08
Exemplified compound 1109A-10249B-105512.10
Exemplified compound 1110A-10280B-105202.11
Exemplified compound 1111A-10235B-105652.10
Exemplified compound 1112A-10220B-105802.10
Exemplified compound 1113A-10249B-201512.16
Exemplified compound 1114A-10280B-201202.13
Exemplified compound 1115A-10235B-201652.17
Exemplified compound 1116A-10220B-201802.18
Exemplified compound 1117A-10249B-202512.10
Exemplified compound 1118A-10280B-202202.11
Exemplified compound 1119A-10235B-202652.10
Exemplified compound 1120A-10220B-202802.09
TABLE 2 — Specific examples of polycarbonate resins
Group AGroup B
StructuralProportionStructuralProportionDielectric
Exemplified compound No.unit(mol %)unit(mol %)constant
Exemplified compound 1121A-10249B-203512.13
Exemplified compound 1122A-10280B-203202.12
Exemplified compound 1123A-10235B-203652.14
Exemplified compound 1124A-10220B-203802.14
Exemplified compound 1125A-10249B-204512.09
Exemplified compound 1126A-10280B-204202.10
Exemplified compound 1127A-10235B-204652.09
Exemplified compound 1128A-10220B-204802.08
Exemplified compound 1129A-10249B-205512.13
Exemplified compound 1130A-10280B-205202.12
Exemplified compound 1131A-10235B-205652.14
Exemplified compound 1132A-10220B-205802.14
Exemplified compound 1133A-10249B-301512.12
Exemplified compound 1134A-10280B-301202.11
Exemplified compound 1135A-10235B-301652.12
Exemplified compound 1136A-10220B-301802.13
Exemplified compound 1137A-10249B-302512.12
Exemplified compound 1138A-10280B-302202.11
Exemplified compound 1139A-10235B-302652.12
Exemplified compound 1140A-10220B-302802.13
Exemplified compound 1141A-10249B-303512.13
Exemplified compound 1142A-10280B-303202.12
Exemplified compound 1143A-10235B-303652.14
Exemplified compound 1144A-10220B-303802.14
Exemplified compound 1145A-10249B-304512.13
Exemplified compound 1146A-10280B-304202.12
Exemplified compound 1147A-10235B-304652.13
Exemplified compound 1148A-10220B-304802.13
Exemplified compound 1149A-10249B-305512.07
Exemplified compound 1150A-10280B-305202.10
Exemplified compound 1151A-10235B-305652.06
Exemplified compound 1152A-10220B-305802.05
Exemplified compound 1153A-10249B-306512.14
Exemplified compound 1154A-10280B-306202.12
Exemplified compound 1155A-10235B-306652.14
Exemplified compound 1156A-10220B-306802.15
Exemplified compound 1157A-10249B-307512.12
Exemplified compound 1158A-10280B-307202.11
Exemplified compound 1159A-10235B-307652.12
Exemplified compound 1160A-10220B-307802.13
Exemplified compound 1161A-10249B-308512.13
Exemplified compound 1162A-10280B-308202.12
Exemplified compound 1163A-10235B-308652.13
Exemplified compound 1164A-10220B-308802.14
Exemplified compound 1165A-10249B-401512.17
Exemplified compound 1166A-10280B-401202.13
Exemplified compound 1167A-10235B-401652.18
Exemplified compound 1168A-10220B-401802.20
Exemplified compound 1169A-10249B-402512.21
Exemplified compound 1170A-10280B-402202.15
Exemplified compound 1171A-10235B-402652.23
Exemplified compound 1172A-10220B-402802.26
Exemplified compound 1173A-10249B-403512.26
Exemplified compound 1174A-10280B-403202.17
Exemplified compound 1175A-10235B-403652.30
Exemplified compound 1176A-10220B-403802.35
Exemplified compound 1177A-10249B-404512.14
Exemplified compound 1178A-10280B-404202.12
Exemplified compound 1179A-10235B-404652.15
Exemplified compound 1180A-10220B-404802.16
Exemplified compound 1181A-10249B-405512.20
Exemplified compound 1182A-10280B-405202.15
Exemplified compound 1183A-10235B-405652.22
Exemplified compound 1184A-10220B-405802.25
Exemplified compound 1185A-10349B-101512.16
Exemplified compound 1186A-10380B-101202.19
Exemplified compound 1187A-10335B-101652.14
Exemplified compound 1188A-10320B-101802.13
Exemplified compound 1189A-10349B-102512.21
Exemplified compound 1190A-10380B-102202.21
Exemplified compound 1191A-10335B-102652.21
Exemplified compound 1192A-10320B-102802.21
Exemplified compound 1193A-10349B-103512.16
Exemplified compound 1194A-10380B-103202.19
Exemplified compound 1195A-10335B-103652.14
Exemplified compound 1196A-10320B-103802.13
Exemplified compound 1197A-10349B-104512.14
Exemplified compound 1198A-10380B-104202.18
Exemplified compound 1199A-10335B-104652.12
Exemplified compound 1200A-10320B-104802.10
Exemplified compound 1201A-10349B-105512.15
Exemplified compound 1202A-10380B-105202.18
Exemplified compound 1203A-10335B-105652.13
Exemplified compound 1204A-10320B-105802.12
Exemplified compound 1205A-10349B-201512.20
Exemplified compound 1206A-10380B-201202.21
Exemplified compound 1207A-10335B-201652.20
Exemplified compound 1208A-10320B-201802.20
Exemplified compound 1209A-10349B-202512.15
Exemplified compound 1210A-10380B-202202.18
Exemplified compound 1211A-10335B-202652.13
Exemplified compound 1212A-10320B-202802.11
Exemplified compound 1213A-10349B-203512.18
Exemplified compound 1214A-10380B-203202.20
Exemplified compound 1215A-10335B-203652.17
Exemplified compound 1216A-10320B-203802.16
Exemplified compound 1217A-10349B-204512.14
Exemplified compound 1218A-10380B-204202.18
Exemplified compound 1219A-10335B-204652.12
Exemplified compound 1220A-10320B-204802.10
Exemplified compound 1221A-10349B-205512.18
Exemplified compound 1222A-10380B-205202.20
Exemplified compound 1223A-10335B-205652.17
Exemplified compound 1224A-10320B-205802.16
Exemplified compound 1225A-10349B-301512.17
Exemplified compound 1226A-10380B-301202.19
Exemplified compound 1227A-10335B-301652.16
Exemplified compound 1228A-10320B-301802.15
Exemplified compound 1229A-10349B-302512.17
Exemplified compound 1230A-10380B-302202.19
Exemplified compound 1231A-10335B-302652.16
Exemplified compound 1232A-10320B-302802.15
Exemplified compound 1233A-10349B-303512.18
Exemplified compound 1234A-10380B-303202.20
Exemplified compound 1235A-10335B-303652.17
Exemplified compound 1236A-10320B-303802.16
Exemplified compound 1237A-10349B-304512.17
Exemplified compound 1238A-10380B-304202.19
Exemplified compound 1239A-10335B-304652.16
Exemplified compound 1240A-10320B-304802.15
TABLE 3 — Specific examples of polycarbonate resins
Group AGroup B
StructuralProportionStructuralProportionDielectric
Exemplified compound No.unit(mol %)unit(mol %)constant
Exemplified compound 1241A-10349B-305512.12
Exemplified compound 1242A-10380B-305202.17
Exemplified compound 1243A-10335B-305652.09
Exemplified compound 1244A-10320B-305802.07
Exemplified compound 1245A-10349B-306512.18
Exemplified compound 1246A-10380B-306202.20
Exemplified compound 1247A-10335B-306652.18
Exemplified compound 1248A-10320B-306802.17
Exemplified compound 1249A-10349B-307512.17
Exemplified compound 1250A-10380B-307202.19
Exemplified compound 1251A-10335B-307652.16
Exemplified compound 1252A-10320B-307802.14
Exemplified compound 1253A-10349B-308512.18
Exemplified compound 1254A-10380B-308202.19
Exemplified compound 1255A-10335B-308652.17
Exemplified compound 1256A-10320B-308802.16
Exemplified compound 1257A-10349B-401512.21
Exemplified compound 1258A-10380B-401202.21
Exemplified compound 1259A-10335B-401652.22
Exemplified compound 1260A-10320B-401802.22
Exemplified compound 1261A-10349B-402512.25
Exemplified compound 1262A-10380B-402202.23
Exemplified compound 1263A-10335B-402652.27
Exemplified compound 1264A-10320B-402802.28
Exemplified compound 1265A-10349B-403512.31
Exemplified compound 1266A-10380B-403202.25
Exemplified compound 1267A-10335B-403652.34
Exemplified compound 1268A-10320B-403802.37
Exemplified compound 1269A-10349B-404512.19
Exemplified compound 1270A-10380B-404202.20
Exemplified compound 1271A-10335B-404652.18
Exemplified compound 1272A-10320B-404802.17
Exemplified compound 1273A-10349B-405512.25
Exemplified compound 1274A-10380B-405202.22
Exemplified compound 1275A-10335B-405652.26
Exemplified compound 1276A-10320B-405802.27
Exemplified compound 1277A-10449B-101512.06
Exemplified compound 1278A-10480B-101202.03
Exemplified compound 1279A-10435B-101652.07
Exemplified compound 1280A-10420B-101802.09
Exemplified compound 1281A-10449B-102512.11
Exemplified compound 1282A-10480B-102202.05
Exemplified compound 1283A-10435B-102652.14
Exemplified compound 1284A-10420B-102802.17
Exemplified compound 1285A-10449B-103512.06
Exemplified compound 1286A-10480B-103202.03
Exemplified compound 1287A-10435B-103652.07
Exemplified compound 1288A-10420B-103802.09
Exemplified compound 1289A-10449B-104512.04
Exemplified compound 1290A-10480B-104202.02
Exemplified compound 1291A-10435B-104652.05
Exemplified compound 1292A-10420B-104802.06
Exemplified compound 1293A-10449B-105512.05
Exemplified compound 1294A-10480B-105202.03
Exemplified compound 1295A-10435B-105652.07
Exemplified compound 1296A-10420B-105802.08
Exemplified compound 1297A-10449B-201512.11
Exemplified compound 1298A-10480B-201202.05
Exemplified compound 1299A-10435B-201652.13
Exemplified compound 1300A-10420B-201802.16
Exemplified compound 1301A-10449B-202512.05
Exemplified compound 1302A-10480B-202202.02
Exemplified compound 1303A-10435B-202652.06
Exemplified compound 1304A-10420B-202802.07
Exemplified compound 1305A-10449B-203512.08
Exemplified compound 1306A-10480B-203202.04
Exemplified compound 1307A-10435B-203652.10
Exemplified compound 1308A-10420B-203802.12
Exemplified compound 1309A-10449B-204512.04
Exemplified compound 1310A-10480B-204202.02
Exemplified compound 1311A-10435B-204652.05
Exemplified compound 1312A-10420B-204802.06
Exemplified compound 1313A-10449B-205512.08
Exemplified compound 1314A-10480B-205202.04
Exemplified compound 1315A-10435B-205652.10
Exemplified compound 1316A-10420B-205802.12
Exemplified compound 1317A-10449B-301512.07
Exemplified compound 1318A-10480B-301202.03
Exemplified compound 1319A-10435B-301652.09
Exemplified compound 1320A-10420B-301802.11
Exemplified compound 1321A-10449B-302512.07
Exemplified compound 1322A-10480B-302202.03
Exemplified compound 1323A-10435B-302652.09
Exemplified compound 1324A-10420B-302802.11
Exemplified compound 1325A-10449B-303512.08
Exemplified compound 1326A-10480B-303202.04
Exemplified compound 1327A-10435B-303652.10
Exemplified compound 1328A-10420B-303802.12
Exemplified compound 1329A-10449B-304512.08
Exemplified compound 1330A-10480B-304202.03
Exemplified compound 1331A-10435B-304652.09
Exemplified compound 1332A-10420B-304802.11
Exemplified compound 1333A-10449B-305512.02
Exemplified compound 1334A-10480B-305202.01
Exemplified compound 1335A-10435B-305652.03
Exemplified compound 1336A-10420B-305802.03
Exemplified compound 1337A-10449B-306512.09
Exemplified compound 1338A-10480B-306202.04
Exemplified compound 1339A-10435B-306652.11
Exemplified compound 1340A-10420B-306802.13
Exemplified compound 1341A-10449B-307512.07
Exemplified compound 1342A-10480B-307202.03
Exemplified compound 1343A-10435B-307652.09
Exemplified compound 1344A-10420B-307802.11
Exemplified compound 1345A-10449B-308512.08
Exemplified compound 1346A-10480B-308202.04
Exemplified compound 1347A-10435B-308652.10
Exemplified compound 1348A-10420B-308802.12
Exemplified compound 1349A-10449B-401512.12
Exemplified compound 1350A-10480B-401202.05
Exemplified compound 1351A-10435B-401652.15
Exemplified compound 1352A-10420B-401802.18
Exemplified compound 1353A-10449B-402512.16
Exemplified compound 1354A-10480B-402202.07
Exemplified compound 1355A-10435B-402652.20
Exemplified compound 1356A-10420B-402802.24
Exemplified compound 1357A-10449B-403512.21
Exemplified compound 1358A-10480B-403202.09
Exemplified compound 1359A-10435B-403652.27
Exemplified compound 1360A-10420B-403802.33
TABLE 4 — Specific examples of polycarbonate resins
Group AGroup B
StructuralProportionStructuralProportionDielectric
Exemplified compound No.unit(mol %)unit(mol %)constant
Exemplified compound 1361A-10449B-404512.09
Exemplified compound 1362A-10480B-404202.04
Exemplified compound 1363A-10435B-404652.11
Exemplified compound 1364A-10420B-404802.13
Exemplified compound 1365A-10449B-405512.15
Exemplified compound 1366A-10480B-405202.06
Exemplified compound 1367A-10435B-405652.19
Exemplified compound 1368A-10420B-405802.23
Exemplified compound 1369A-10549B-101512.17
Exemplified compound 1370A-10580B-101202.21
Exemplified compound 1371A-10535B-101652.15
Exemplified compound 1372A-10520B-101802.13
Exemplified compound 1373A-10549B-102512.22
Exemplified compound 1374A-10580B-102202.23
Exemplified compound 1375A-10535B-102652.22
Exemplified compound 1376A-10520B-102802.22
Exemplified compound 1377A-10549B-103512.17
Exemplified compound 1378A-10580B-103202.21
Exemplified compound 1379A-10535B-103652.15
Exemplified compound 1380A-10520B-103802.13
Exemplified compound 1381A-10549B-104512.15
Exemplified compound 1382A-10580B-104202.20
Exemplified compound 1383A-10535B-104652.13
Exemplified compound 1384A-10520B-104802.10
Exemplified compound 1385A-10549B-105512.16
Exemplified compound 1386A-10580B-105202.21
Exemplified compound 1387A-10535B-105652.14
Exemplified compound 1388A-10520B-105802.12
Exemplified compound 1389A-10549B-201512.22
Exemplified compound 1390A-10580B-201202.23
Exemplified compound 1391A-10535B-201652.21
Exemplified compound 1392A-10520B-201802.21
Exemplified compound 1393A-10549B-202512.16
Exemplified compound 1394A-10580B-202202.21
Exemplified compound 1395A-10535B-202652.14
Exemplified compound 1396A-10520B-202802.12
Exemplified compound 1397A-10549B-203512.19
Exemplified compound 1398A-10580B-203202.22
Exemplified compound 1399A-10535B-203652.18
Exemplified compound 1400A-10520B-203802.17
Exemplified compound 1401A-10549B-204512.15
Exemplified compound 1402A-10580B-204202.20
Exemplified compound 1403A-10535B-204652.13
Exemplified compound 1404A-10520B-204802.11
Exemplified compound 1405A-10549B-205512.19
Exemplified compound 1406A-10580B-205202.22
Exemplified compound 1407A-10535B-205652.18
Exemplified compound 1408A-10520B-205802.17
Exemplified compound 1409A-10549B-301512.18
Exemplified compound 1410A-10580B-301202.21
Exemplified compound 1411A-10535B-301652.17
Exemplified compound 1412A-10520B-301802.15
Exemplified compound 1413A-10549B-302512.18
Exemplified compound 1414A-10580B-302202.21
Exemplified compound 1415A-10535B-302652.17
Exemplified compound 1416A-10520B-302802.15
Exemplified compound 1417A-10549B-303512.19
Exemplified compound 1418A-10580B-303202.22
Exemplified compound 1419A-10535B-303652.18
Exemplified compound 1420A-10520B-303802.17
Exemplified compound 1421A-10549B-304512.19
Exemplified compound 1422A-10580B-304202.22
Exemplified compound 1423A-10535B-304652.17
Exemplified compound 1424A-10520B-304802.16
Exemplified compound 1425A-10549B-305512.13
Exemplified compound 1426A-10580B-305202.19
Exemplified compound 1427A-10535B-305652.10
Exemplified compound 1428A-10520B-305802.07
Exemplified compound 1429A-10549B-306512.20
Exemplified compound 1430A-10580B-306202.22
Exemplified compound 1431A-10535B-306652.19
Exemplified compound 1432A-10520B-306802.18
Exemplified compound 1433A-10549B-307512.18
Exemplified compound 1434A-10580B-307202.21
Exemplified compound 1435A-10535B-307652.17
Exemplified compound 1436A-10520B-307802.15
Exemplified compound 1437A-10549B-308512.19
Exemplified compound 1438A-10580B-308202.22
Exemplified compound 1439A-10535B-308652.18
Exemplified compound 1440A-10520B-308802.17
Exemplified compound 1441A-10549B-401512.23
Exemplified compound 1442A-10580B-401202.23
Exemplified compound 1443A-10535B-401652.23
Exemplified compound 1444A-10520B-401802.22
Exemplified compound 1445A-10549B-402512.27
Exemplified compound 1446A-10580B-402202.25
Exemplified compound 1447A-10535B-402652.28
Exemplified compound 1448A-10520B-402802.29
Exemplified compound 1449A-10549B-403512.32
Exemplified compound 1450A-10580B-403202.27
Exemplified compound 1451A-10535B-403652.35
Exemplified compound 1452A-10520B-403802.37
Exemplified compound 1453A-10549B-404512.20
Exemplified compound 1454A-10580B-404202.22
Exemplified compound 1455A-10535B-404652.19
Exemplified compound 1456A-10520B-404802.18
Exemplified compound 1457A-10549B-405512.26
Exemplified compound 1458A-10580B-405202.25
Exemplified compound 1459A-10535B-405652.27
Exemplified compound 1460A-10520B-405802.28
Exemplified compound 1461A-20149B-101512.11
Exemplified compound 1462A-20180B-101202.12
Exemplified compound 1463A-20135B-101652.11
Exemplified compound 1464A-20120B-101802.11
Exemplified compound 1465A-20149B-102512.17
Exemplified compound 1466A-20180B-102202.14
Exemplified compound 1467A-20135B-102652.18
Exemplified compound 1468A-20120B-102802.19
Exemplified compound 1469A-20149B-103512.11
Exemplified compound 1470A-20180B-103202.12
Exemplified compound 1471A-20135B-103652.11
Exemplified compound 1472A-20120B-103802.11
Exemplified compound 1473A-20149B-104512.09
Exemplified compound 1474A-20180B-104202.11
Exemplified compound 1475A-20135B-104652.09
Exemplified compound 1476A-20120B-104802.08
Exemplified compound 1477A-20149B-105512.11
Exemplified compound 1478A-20180B-105202.11
Exemplified compound 1479A-20135B-105652.10
Exemplified compound 1480A-20120B-105802.10
TABLE 5 — Specific examples of polycarbonate resins
Group AGroup B
StructuralProportionStructuralProportionDielectric
Exemplified compound No.unit(mol %)unit(mol %)constant
Exemplified compound 1481A-20149B-201512.16
Exemplified compound 1482A-20180B-201202.13
Exemplified compound 1483A-20135B-201652.17
Exemplified compound 1484A-20120B-201802.19
Exemplified compound 1485A-20149B-202512.10
Exemplified compound 1486A-20180B-202202.11
Exemplified compound 1487A-20135B-202652.10
Exemplified compound 1488A-20120B-202802.10
Exemplified compound 1489A-20149B-203512.14
Exemplified compound 1490A-20180B-203202.13
Exemplified compound 1491A-20135B-203652.14
Exemplified compound 1492A-20120B-203802.15
Exemplified compound 1493A-20149B-204512.10
Exemplified compound 1494A-20180B-204202.11
Exemplified compound 1495A-20135B-204652.09
Exemplified compound 1496A-20120B-204802.08
Exemplified compound 1497A-20149B-205512.13
Exemplified compound 1498A-20180B-205202.12
Exemplified compound 1499A-20135B-205652.14
Exemplified compound 1500A-20120B-205802.14
Exemplified compound 1501A-20149B-301512.13
Exemplified compound 1502A-20180B-301202.12
Exemplified compound 1503A-20135B-301652.13
Exemplified compound 1504A-20120B-301802.13
Exemplified compound 1505A-20149B-302512.12
Exemplified compound 1506A-20180B-302202.12
Exemplified compound 1507A-20135B-302652.13
Exemplified compound 1508A-20120B-302802.13
Exemplified compound 1509A-20149B-303512.14
Exemplified compound 1510A-20180B-303202.12
Exemplified compound 1511A-20135B-303652.14
Exemplified compound 1512A-20120B-303802.15
Exemplified compound 1513A-20149B-304512.13
Exemplified compound 1514A-20180B-304202.12
Exemplified compound 1515A-20135B-304652.13
Exemplified compound 1516A-20120B-304802.14
Exemplified compound 1517A-20149B-305512.08
Exemplified compound 1518A-20180B-305202.10
Exemplified compound 1519A-20135B-305652.06
Exemplified compound 1520A-20120B-305802.05
Exemplified compound 1521A-20149B-306512.14
Exemplified compound 1522A-20180B-306202.13
Exemplified compound 1523A-20135B-306652.15
Exemplified compound 1524A-20120B-306802.15
Exemplified compound 1525A-20149B-307512.12
Exemplified compound 1526A-20180B-307202.12
Exemplified compound 1527A-20135B-307652.13
Exemplified compound 1528A-20120B-307802.13
Exemplified compound 1529A-20149B-308512.13
Exemplified compound 1530A-20180B-308202.12
Exemplified compound 1531A-20135B-308652.14
Exemplified compound 1532A-20120B-308802.14
Exemplified compound 1533A-20149B-401512.17
Exemplified compound 1534A-20180B-401202.14
Exemplified compound 1535A-20135B-401652.18
Exemplified compound 1536A-20120B-401802.20
Exemplified compound 1537A-20149B-402512.21
Exemplified compound 1538A-20180B-402202.15
Exemplified compound 1539A-20135B-402652.24
Exemplified compound 1540A-20120B-402802.26
Exemplified compound 1541A-20149B-403512.26
Exemplified compound 1542A-20180B-403202.18
Exemplified compound 1543A-20135B-403652.30
Exemplified compound 1544A-20120B-403802.35
Exemplified compound 1545A-20149B-404512.14
Exemplified compound 1546A-20180B-404202.13
Exemplified compound 1547A-20135B-404652.15
Exemplified compound 1548A-20120B-404802.16
Exemplified compound 1549A-20149B-405512.20
Exemplified compound 1550A-20180B-405202.15
Exemplified compound 1551A-20135B-405652.23
Exemplified compound 1552A-20120B-405802.25
Exemplified compound 1553A-20249B-101512.16
Exemplified compound 1554A-20280B-101202.19
Exemplified compound 1555A-20235B-101652.14
Exemplified compound 1556A-20220B-101802.13
Exemplified compound 1557A-20249B-102512.21
Exemplified compound 1558A-20280B-102202.21
Exemplified compound 1559A-20235B-102652.21
Exemplified compound 1560A-20220B-102802.21
Exemplified compound 1561A-20249B-103512.16
Exemplified compound 1562A-20280B-103202.19
Exemplified compound 1563A-20235B-103652.14
Exemplified compound 1564A-20220B-103802.13
Exemplified compound 1565A-20249B-104512.14
Exemplified compound 1566A-20280B-104202.18
Exemplified compound 1567A-20235B-104652.12
Exemplified compound 1568A-20220B-104802.10
Exemplified compound 1569A-20249B-105512.15
Exemplified compound 1570A-20280B-105202.18
Exemplified compound 1571A-20235B-105652.13
Exemplified compound 1572A-20220B-105802.12
Exemplified compound 1573A-20249B-201512.20
Exemplified compound 1574A-20280B-201202.21
Exemplified compound 1575A-20235B-201652.20
Exemplified compound 1576A-20220B-201802.20
Exemplified compound 1577A-20249B-202512.15
Exemplified compound 1578A-20280B-202202.18
Exemplified compound 1579A-20235B-202652.13
Exemplified compound 1580A-20220B-202802.11
Exemplified compound 1581A-20249B-203512.18
Exemplified compound 1582A-20280B-203202.20
Exemplified compound 1583A-20235B-203652.17
Exemplified compound 1584A-20220B-203802.16
Exemplified compound 1585A-20249B-204512.14
Exemplified compound 1586A-20280B-204202.18
Exemplified compound 1587A-20235B-204652.12
Exemplified compound 1588A-20220B-204802.10
Exemplified compound 1589A-20249B-205512.18
Exemplified compound 1590A-20280B-205202.20
Exemplified compound 1591A-20235B-205652.17
Exemplified compound 1592A-20220B-205802.16
Exemplified compound 1593A-20249B-301512.17
Exemplified compound 1594A-20280B-301202.19
Exemplified compound 1595A-20235B-301652.16
Exemplified compound 1596A-20220B-301802.15
Exemplified compound 1597A-20249B-302512.17
Exemplified compound 1598A-20280B-302202.19
Exemplified compound 1599A-20235B-302652.16
Exemplified compound 1600A-20220B-302802.15
TABLE 6 — Specific examples of polycarbonate resins
Group AGroup B
StructuralProportionStructuralProportionDielectric
Exemplified compound No.unit(mol %)unit(mol %)constant
Exemplified compound 1601A-20249B-303512.18
Exemplified compound 1602A-20280B-303202.20
Exemplified compound 1603A-20235B-303652.17
Exemplified compound 1604A-20220B-303802.16
Exemplified compound 1605A-20249B-304512.17
Exemplified compound 1606A-20280B-304202.19
Exemplified compound 1607A-20235B-304652.16
Exemplified compound 1608A-20220B-304802.15
Exemplified compound 1609A-20249B-305512.12
Exemplified compound 1610A-20280B-305202.17
Exemplified compound 1611A-20235B-305652.09
Exemplified compound 1612A-20220B-305802.07
Exemplified compound 1613A-20249B-306512.18
Exemplified compound 1614A-20280B-306202.20
Exemplified compound 1615A-20235B-306652.18
Exemplified compound 1616A-20220B-306802.17
Exemplified compound 1617A-20249B-307512.17
Exemplified compound 1618A-20280B-307202.19
Exemplified compound 1619A-20235B-307652.16
Exemplified compound 1620A-20220B-307802.14
Exemplified compound 1621A-20249B-308512.18
Exemplified compound 1622A-20280B-308202.19
Exemplified compound 1623A-20235B-308652.17
Exemplified compound 1624A-20220B-308802.16
Exemplified compound 1625A-20249B-401512.21
Exemplified compound 1626A-20280B-401202.21
Exemplified compound 1627A-20235B-401652.22
Exemplified compound 1628A-20220B-401802.22
Exemplified compound 1629A-20249B-402512.25
Exemplified compound 1630A-20280B-402202.23
Exemplified compound 1631A-20235B-402652.27
Exemplified compound 1632A-20220B-402802.28
Exemplified compound 1633A-20249B-403512.31
Exemplified compound 1634A-20280B-403202.25
Exemplified compound 1635A-20235B-403652.34
Exemplified compound 1636A-20220B-403802.37
Exemplified compound 1637A-20249B-404512.19
Exemplified compound 1638A-20280B-404202.20
Exemplified compound 1639A-20235B-404652.18
Exemplified compound 1640A-20220B-404802.17
Exemplified compound 1641A-20249B-405512.25
Exemplified compound 1642A-20280B-405202.22
Exemplified compound 1643A-20235B-405652.26
Exemplified compound 1644A-20220B-405802.27
Exemplified compound 1645A-20349B-101512.04
Exemplified compound 1646A-20380B-101202.00
Exemplified compound 1647A-20335B-101652.06
Exemplified compound 1648A-20320B-101802.08
Exemplified compound 1649A-20349B-102512.09
Exemplified compound 1650A-20380B-102202.02
Exemplified compound 1651A-20335B-102652.13
Exemplified compound 1652A-20320B-102802.16
Exemplified compound 1653A-20349B-103512.04
Exemplified compound 1654A-20380B-103202.00
Exemplified compound 1655A-20335B-103652.06
Exemplified compound 1656A-20320B-103802.08
Exemplified compound 1657A-20349B-104512.02
Exemplified compound 1658A-20380B-104201.99
Exemplified compound 1659A-20335B-104652.03
Exemplified compound 1660A-20320B-104802.05
Exemplified compound 1661A-20349B-105512.03
Exemplified compound 1662A-20380B-105202.00
Exemplified compound 1663A-20335B-105652.05
Exemplified compound 1664A-20320B-105802.07
Exemplified compound 1665A-20349B-201512.09
Exemplified compound 1666A-20380B-201202.02
Exemplified compound 1667A-20335B-201652.12
Exemplified compound 1668A-20320B-201802.16
Exemplified compound 1669A-20349B-202512.03
Exemplified compound 1670A-20380B-202201.99
Exemplified compound 1671A-20335B-202652.05
Exemplified compound 1672A-20320B-202802.07
Exemplified compound 1673A-20349B-203512.06
Exemplified compound 1674A-20380B-203202.01
Exemplified compound 1675A-20335B-203652.09
Exemplified compound 1676A-20320B-203802.12
Exemplified compound 1677A-20349B-204512.02
Exemplified compound 1678A-20380B-204201.99
Exemplified compound 1679A-20335B-204652.04
Exemplified compound 1680A-20320B-204802.05
Exemplified compound 1681A-20349B-205512.06
Exemplified compound 1682A-20380B-205202.01
Exemplified compound 1683A-20335B-205652.09
Exemplified compound 1684A-20320B-205802.11
Exemplified compound 1685A-20349B-301512.05
Exemplified compound 1686A-20380B-301202.00
Exemplified compound 1687A-20335B-301652.08
Exemplified compound 1688A-20320B-301802.10
Exemplified compound 1689A-20349B-302512.05
Exemplified compound 1690A-20380B-302202.00
Exemplified compound 1691A-20335B-302652.07
Exemplified compound 1692A-20320B-302802.10
Exemplified compound 1693A-20349B-303512.06
Exemplified compound 1694A-20380B-303202.01
Exemplified compound 1695A-20335B-303652.09
Exemplified compound 1696A-20320B-303802.12
Exemplified compound 1697A-20349B-304512.06
Exemplified compound 1698A-20380B-304202.00
Exemplified compound 1699A-20335B-304652.08
Exemplified compound 1700A-20320B-304802.11
Exemplified compound 1701A-20349B-305512.00
Exemplified compound 1702A-20380B-305201.98
Exemplified compound 1703A-20335B-305652.01
Exemplified compound 1704A-20320B-305802.02
Exemplified compound 1705A-20349B-306512.07
Exemplified compound 1706A-20380B-306202.01
Exemplified compound 1707A-20335B-306652.10
Exemplified compound 1708A-20320B-306802.13
Exemplified compound 1709A-20349B-307512.05
Exemplified compound 1710A-20380B-307202.00
Exemplified compound 1711A-20335B-307652.07
Exemplified compound 1712A-20320B-307802.10
Exemplified compound 1713A-20349B-308512.06
Exemplified compound 1714A-20380B-308202.01
Exemplified compound 1715A-20335B-308652.09
Exemplified compound 1716A-20320B-308802.11
Exemplified compound 1717A-20349B-401512.10
Exemplified compound 1718A-20380B-401202.02
Exemplified compound 1719A-20335B-401652.13
Exemplified compound 1720A-20320B-401802.17
TABLE 7 — Specific examples of polycarbonate resins
Group AGroup B
StructuralProportionStructuralProportionDielectric
Exemplified compound No.unit(mol %)unit(mol %)constant
Exemplified compound 1721A-20349B-402512.14
Exemplified compound 1722A-20380B-402202.04
Exemplified compound 1723A-20335B-402652.18
Exemplified compound 1724A-20320B-402802.23
Exemplified compound 1725A-20349B-403512.19
Exemplified compound 1726A-20380B-403202.06
Exemplified compound 1727A-20335B-403652.25
Exemplified compound 1728A-20320B-403802.32
Exemplified compound 1729A-20349B-404512.07
Exemplified compound 1730A-20380B-404202.01
Exemplified compound 1731A-20335B-404652.10
Exemplified compound 1732A-20320B-404802.13
Exemplified compound 1733A-20349B-405512.13
Exemplified compound 1734A-20380B-405202.03
Exemplified compound 1735A-20335B-405652.18
Exemplified compound 1736A-20320B-405802.22
Exemplified compound 1737A-20449B-101512.09
Exemplified compound 1738A-20480B-101202.08
Exemplified compound 1739A-20435B-101652.10
Exemplified compound 1740A-20420B-101802.10
Exemplified compound 1741A-20449B-102512.14
Exemplified compound 1742A-20480B-102202.10
Exemplified compound 1743A-20435B-102652.16
Exemplified compound 1744A-20420B-102802.18
Exemplified compound 1745A-20449B-103512.09
Exemplified compound 1746A-20480B-103202.08
Exemplified compound 1747A-20435B-103652.09
Exemplified compound 1748A-20420B-103802.10
Exemplified compound 1749A-20449B-104512.07
Exemplified compound 1750A-20480B-104202.07
Exemplified compound 1751A-20435B-104652.07
Exemplified compound 1752A-20420B-104802.07
Exemplified compound 1753A-20449B-105512.08
Exemplified compound 1754A-20480B-105202.07
Exemplified compound 1755A-20435B-105652.09
Exemplified compound 1756A-20420B-105802.09
Exemplified compound 1757A-20449B-201512.14
Exemplified compound 1758A-20480B-201202.10
Exemplified compound 1759A-20435B-201652.16
Exemplified compound 1760A-20420B-201802.18
Exemplified compound 1761A-20449B-202512.08
Exemplified compound 1762A-20480B-202202.07
Exemplified compound 1763A-20435B-202652.08
Exemplified compound 1764A-20420B-202802.09
Exemplified compound 1765A-20449B-203512.11
Exemplified compound 1766A-20480B-203202.09
Exemplified compound 1767A-20435B-203652.12
Exemplified compound 1768A-20420B-203802.14
Exemplified compound 1769A-20449B-204512.07
Exemplified compound 1770A-20480B-204202.07
Exemplified compound 1771A-20435B-204652.07
Exemplified compound 1772A-20420B-204802.07
Exemplified compound 1773A-20449B-205512.11
Exemplified compound 1774A-20480B-205202.09
Exemplified compound 1775A-20435B-205652.12
Exemplified compound 1776A-20420B-205802.13
Exemplified compound 1777A-20449B-301512.10
Exemplified compound 1778A-20480B-301202.08
Exemplified compound 1779A-20435B-301652.11
Exemplified compound 1780A-20420B-301802.12
Exemplified compound 1781A-20449B-302512.10
Exemplified compound 1782A-20480B-302202.08
Exemplified compound 1783A-20435B-302652.11
Exemplified compound 1784A-20420B-302802.12
Exemplified compound 1785A-20449B-303512.11
Exemplified compound 1786A-20480B-303202.09
Exemplified compound 1787A-20435B-303652.12
Exemplified compound 1788A-20420B-303802.14
Exemplified compound 1789A-20449B-304512.11
Exemplified compound 1790A-20480B-304202.08
Exemplified compound 1791A-20435B-304652.12
Exemplified compound 1792A-20420B-304802.13
Exemplified compound 1793A-20449B-305512.05
Exemplified compound 1794A-20480B-305202.06
Exemplified compound 1795A-20435B-305652.05
Exemplified compound 1796A-20420B-305802.04
Exemplified compound 1797A-20449B-306512.12
Exemplified compound 1798A-20480B-306202.09
Exemplified compound 1799A-20435B-306652.13
Exemplified compound 1800A-20420B-306802.14
Exemplified compound 1801A-20449B-307512.10
Exemplified compound 1802A-20480B-307202.08
Exemplified compound 1803A-20435B-307652.11
Exemplified compound 1804A-20420B-307802.12
Exemplified compound 1805A-20449B-308512.11
Exemplified compound 1806A-20480B-308202.08
Exemplified compound 1807A-20435B-308652.12
Exemplified compound 1808A-20420B-308802.13
Exemplified compound 1809A-20449B-401512.15
Exemplified compound 1810A-20480B-401202.10
Exemplified compound 1811A-20435B-401652.17
Exemplified compound 1812A-20420B-401802.19
Exemplified compound 1813A-20449B-402512.19
Exemplified compound 1814A-20480B-402202.12
Exemplified compound 1815A-20435B-402652.22
Exemplified compound 1816A-20420B-402802.25
Exemplified compound 1817A-20449B-403512.24
Exemplified compound 1818A-20480B-403202.14
Exemplified compound 1819A-20435B-403652.29
Exemplified compound 1820A-20420B-403802.34
Exemplified compound 1821A-20449B-404512.12
Exemplified compound 1822A-20480B-404202.09
Exemplified compound 1823A-20435B-404652.13
Exemplified compound 1824A-20420B-404802.15
Exemplified compound 1825A-20449B-405512.18
Exemplified compound 1826A-20480B-405202.11
Exemplified compound 1827A-20435B-405652.21
Exemplified compound 1828A-20420B-405802.24
Exemplified compound 1829A-20549B-101512.04
Exemplified compound 1830A-20580B-101202.00
Exemplified compound 1831A-20535B-101652.06
Exemplified compound 1832A-20520B-101802.08
Exemplified compound 1833A-20549B-102512.10
Exemplified compound 1834A-20580B-102202.02
Exemplified compound 1835A-20535B-102652.13
Exemplified compound 1836A-20520B-102802.16
Exemplified compound 1837A-20549B-103512.04
Exemplified compound 1838A-20580B-103202.00
Exemplified compound 1839A-20535B-103652.06
Exemplified compound 1840A-20520B-103802.08
TABLE 8 — Specific examples of polycarbonate resins
Group AGroup B
StructuralProportionStructuralProportionDielectric
Exemplified compound No.unit(mol %)unit(mol %)constant
Exemplified compound 1841A-20549B-104512.02
Exemplified compound 1842A-20580B-104201.99
Exemplified compound 1843A-20535B-104652.04
Exemplified compound 1844A-20520B-104802.05
Exemplified compound 1845A-20549B-105512.04
Exemplified compound 1846A-20580B-105202.00
Exemplified compound 1847A-20535B-105652.05
Exemplified compound 1848A-20520B-105802.07
Exemplified compound 1849A-20549B-201512.09
Exemplified compound 1850A-20580B-201202.02
Exemplified compound 1851A-20535B-201652.12
Exemplified compound 1852A-20520B-201802.16
Exemplified compound 1853A-20549B-202512.03
Exemplified compound 1854A-20580B-202202.00
Exemplified compound 1855A-20535B-202652.05
Exemplified compound 1856A-20520B-202802.07
Exemplified compound 1857A-20549B-203512.07
Exemplified compound 1858A-20580B-203202.01
Exemplified compound 1859A-20535B-203652.09
Exemplified compound 1860A-20520B-203802.12
Exemplified compound 1861A-20549B-204512.03
Exemplified compound 1862A-20580B-204202.00
Exemplified compound 1863A-20535B-204652.04
Exemplified compound 1864A-20520B-204802.05
Exemplified compound 1865A-20549B-205512.06
Exemplified compound 1866A-20580B-205202.01
Exemplified compound 1867A-20535B-205652.09
Exemplified compound 1868A-20520B-205802.11
Exemplified compound 1869A-20549B-301512.06
Exemplified compound 1870A-20580B-301202.01
Exemplified compound 1871A-20535B-301652.08
Exemplified compound 1872A-20520B-301802.10
Exemplified compound 1873A-20549B-302512.05
Exemplified compound 1874A-20580B-302202.01
Exemplified compound 1875A-20535B-302652.08
Exemplified compound 1876A-20520B-302802.10
Exemplified compound 1877A-20549B-303512.07
Exemplified compound 1878A-20580B-303202.01
Exemplified compound 1879A-20535B-303652.09
Exemplified compound 1880A-20520B-303802.12
Exemplified compound 1881A-20549B-304512.06
Exemplified compound 1882A-20580B-304202.01
Exemplified compound 1883A-20535B-304652.08
Exemplified compound 1884A-20520B-304802.11
Exemplified compound 1885A-20549B-305512.01
Exemplified compound 1886A-20580B-305201.99
Exemplified compound 1887A-20535B-305652.01
Exemplified compound 1888A-20520B-305802.02
Exemplified compound 1889A-20549B-306512.07
Exemplified compound 1890A-20580B-306202.01
Exemplified compound 1891A-20535B-306652.10
Exemplified compound 1892A-20520B-306802.13
Exemplified compound 1893A-20549B-307512.05
Exemplified compound 1894A-20580B-307202.01
Exemplified compound 1895A-20535B-307652.08
Exemplified compound 1896A-20520B-307802.10
Exemplified compound 1897A-20549B-308512.06
Exemplified compound 1898A-20580B-308202.01
Exemplified compound 1899A-20535B-308652.09
Exemplified compound 1900A-20520B-308802.11
Exemplified compound 1901A-20549B-401512.10
Exemplified compound 1902A-20580B-401202.02
Exemplified compound 1903A-20535B-401652.13
Exemplified compound 1904A-20520B-401802.17
Exemplified compound 1905A-20549B-402512.14
Exemplified compound 1906A-20580B-402202.04
Exemplified compound 1907A-20535B-402652.19
Exemplified compound 1908A-20520B-402802.24
Exemplified compound 1909A-20549B-403512.19
Exemplified compound 1910A-20580B-403202.06
Exemplified compound 1911A-20535B-403652.26
Exemplified compound 1912A-20520B-403802.32
Exemplified compound 1913A-20549B-404512.07
Exemplified compound 1914A-20580B-404202.01
Exemplified compound 1915A-20535B-404652.10
Exemplified compound 1916A-20520B-404802.13
Exemplified compound 1917A-20549B-405512.13
Exemplified compound 1918A-20580B-405202.04
Exemplified compound 1919A-20535B-405652.18
Exemplified compound 1920A-20520B-405802.22
Exemplified compound 2281A-40149B-101512.11
Exemplified compound 2282A-40180B-101202.11
Exemplified compound 2283A-40135B-101652.11
Exemplified compound 2284A-40120B-101802.11
Exemplified compound 2285A-40149B-102512.16
Exemplified compound 2286A-40180B-102202.13
Exemplified compound 2287A-40135B-102652.18
Exemplified compound 2288A-40120B-102802.19
Exemplified compound 2289A-40149B-103512.11
Exemplified compound 2290A-40180B-103202.11
Exemplified compound 2291A-40135B-103652.11
Exemplified compound 2292A-40120B-103802.11
Exemplified compound 2293A-40149B-104512.09
Exemplified compound 2294A-40180B-104202.10
Exemplified compound 2295A-40135B-104652.08
Exemplified compound 2296A-40120B-104802.08
Exemplified compound 2297A-40149B-105512.10
Exemplified compound 2298A-40180B-105202.11
Exemplified compound 2299A-40135B-105652.10
Exemplified compound 2300A-40120B-105802.10
Exemplified compound 2301A-40149B-201512.16
Exemplified compound 2302A-40180B-201202.13
Exemplified compound 2303A-40135B-201652.17
Exemplified compound 2304A-40120B-201802.18
Exemplified compound 2305A-40149B-202512.10
Exemplified compound 2306A-40180B-202202.11
Exemplified compound 2307A-40135B-202652.10
Exemplified compound 2308A-40120B-202802.09
Exemplified compound 2309A-40149B-203512.13
Exemplified compound 2310A-40180B-203202.12
Exemplified compound 2311A-40135B-203652.14
Exemplified compound 2312A-40120B-203802.14
Exemplified compound 2313A-40149B-204512.09
Exemplified compound 2314A-40180B-204202.11
Exemplified compound 2315A-40135B-204652.09
Exemplified compound 2316A-40120B-204802.08
Exemplified compound 2317A-40149B-205512.13
Exemplified compound 2318A-40180B-205202.12
Exemplified compound 2319A-40135B-205652.14
Exemplified compound 2320A-40120B-205802.14
TABLE 9 — Specific examples of polycarbonate resins
Group AGroup B
StructuralProportionStructuralProportionDielectric
Exemplified compound No.unit(mol %)unit(mol %)constant
Exemplified compound 2321A-40149B-301512.12
Exemplified compound 2322A-40180B-301202.12
Exemplified compound 2323A-40135B-301652.13
Exemplified compound 2324A-40120B-301802.13
Exemplified compound 2325A-40149B-302512.12
Exemplified compound 2326A-40180B-302202.12
Exemplified compound 2327A-40135B-302652.12
Exemplified compound 2328A-40120B-302802.13
Exemplified compound 2329A-40149B-303512.13
Exemplified compound 2330A-40180B-303202.12
Exemplified compound 2331A-40135B-303652.14
Exemplified compound 2332A-40120B-303802.14
Exemplified compound 2333A-40149B-304512.13
Exemplified compound 2334A-40180B-304202.12
Exemplified compound 2335A-40135B-304652.13
Exemplified compound 2336A-40120B-304802.13
Exemplified compound 2337A-40149B-305512.07
Exemplified compound 2338A-40180B-305202.10
Exemplified compound 2339A-40135B-305652.06
Exemplified compound 2340A-40120B-305802.05
Exemplified compound 2341A-40149B-306512.14
Exemplified compound 2342A-40180B-306202.12
Exemplified compound 2343A-40135B-306652.15
Exemplified compound 2344A-40120B-306802.15
Exemplified compound 2345A-40149B-307512.12
Exemplified compound 2346A-40180B-307202.12
Exemplified compound 2347A-40135B-307652.12
Exemplified compound 2348A-40120B-307802.13
Exemplified compound 2349A-40149B-308512.13
Exemplified compound 2350A-40180B-308202.12
Exemplified compound 2351A-40135B-308652.14
Exemplified compound 2352A-40120B-308802.14
Exemplified compound 2353A-40149B-401512.17
Exemplified compound 2354A-40180B-401202.13
Exemplified compound 2355A-40135B-401652.18
Exemplified compound 2356A-40120B-401802.20
Exemplified compound 2357A-40149B-402512.21
Exemplified compound 2358A-40180B-402202.15
Exemplified compound 2359A-40135B-402652.23
Exemplified compound 2360A-40120B-402802.26
Exemplified compound 2361A-40149B-403512.26
Exemplified compound 2362A-40180B-403202.17
Exemplified compound 2363A-40135B-403652.30
Exemplified compound 2364A-40120B-403802.35
Exemplified compound 2365A-40149B-404512.14
Exemplified compound 2366A-40180B-404202.12
Exemplified compound 2367A-40135B-404652.15
Exemplified compound 2368A-40120B-404802.16
Exemplified compound 2369A-40149B-405512.20
Exemplified compound 2370A-40180B-405202.15
Exemplified compound 2371A-40135B-405652.23
Exemplified compound 2372A-40120B-405802.25
Exemplified compound 2373A-40249B-101512.08
Exemplified compound 2374A-40280B-101202.07
Exemplified compound 2375A-40235B-101652.09
Exemplified compound 2376A-40220B-101802.10
Exemplified compound 2377A-40249B-102512.14
Exemplified compound 2378A-40280B-102202.09
Exemplified compound 2379A-40235B-102652.16
Exemplified compound 2380A-40220B-102802.18
Exemplified compound 2381A-40249B-103512.08
Exemplified compound 2382A-40280B-103202.07
Exemplified compound 2383A-40235B-103652.09
Exemplified compound 2384A-40220B-103802.10
Exemplified compound 2385A-40249B-104512.06
Exemplified compound 2386A-40280B-104202.06
Exemplified compound 2387A-40235B-104652.06
Exemplified compound 2388A-40220B-104802.07
Exemplified compound 2389A-40249B-105512.08
Exemplified compound 2390A-40280B-105202.06
Exemplified compound 2391A-40235B-105652.08
Exemplified compound 2392A-40220B-105802.09
Exemplified compound 2393A-40249B-201512.13
Exemplified compound 2394A-40280B-201202.09
Exemplified compound 2395A-40235B-201652.15
Exemplified compound 2396A-40220B-201802.17
Exemplified compound 2397A-40249B-202512.07
Exemplified compound 2398A-40280B-202202.06
Exemplified compound 2399A-40235B-202652.08
Exemplified compound 2400A-40220B-202802.08
Exemplified compound 2401A-40249B-203512.11
Exemplified compound 2402A-40280B-203202.08
Exemplified compound 2403A-40235B-203652.12
Exemplified compound 2404A-40220B-203802.13
Exemplified compound 2405A-40249B-204512.07
Exemplified compound 2406A-40280B-204202.06
Exemplified compound 2407A-40235B-204652.07
Exemplified compound 2408A-40220B-204802.07
Exemplified compound 2409A-40249B-205512.10
Exemplified compound 2410A-40280B-205202.07
Exemplified compound 2411A-40235B-205652.12
Exemplified compound 2412A-40220B-205802.13
Exemplified compound 2413A-40249B-301512.10
Exemplified compound 2414A-40280B-301202.07
Exemplified compound 2415A-40235B-301652.11
Exemplified compound 2416A-40220B-301802.12
Exemplified compound 2417A-40249B-302512.09
Exemplified compound 2418A-40280B-302202.07
Exemplified compound 2419A-40235B-302652.10
Exemplified compound 2420A-40220B-302802.12
Exemplified compound 2421A-40249B-303512.11
Exemplified compound 2422A-40280B-303202.08
Exemplified compound 2423A-40235B-303652.12
Exemplified compound 2424A-40220B-303802.13
Exemplified compound 2425A-40249B-304512.10
Exemplified compound 2426A-40280B-304202.07
Exemplified compound 2427A-40235B-304652.11
Exemplified compound 2428A-40220B-304802.12
Exemplified compound 2429A-40249B-305512.04
Exemplified compound 2430A-40280B-305202.05
Exemplified compound 2431A-40235B-305652.04
Exemplified compound 2432A-40220B-305802.04
Exemplified compound 2433A-40249B-306512.11
Exemplified compound 2434A-40280B-306202.08
Exemplified compound 2435A-40235B-306652.13
Exemplified compound 2436A-40220B-306802.14
Exemplified compound 2437A-40249B-307512.09
Exemplified compound 2438A-40280B-307202.07
Exemplified compound 2439A-40235B-307652.10
Exemplified compound 2440A-40220B-307802.11
TABLE 10 — Specific examples of polycarbonate resins
Group AGroup B
Propor-Propor-Dielec-
ExemplifiedStructuraltionStructuraltiontric
compound No.unit(mol %)unit(mol %)constant
ExemplifiedA-40249B-308512.10
compound 2441
ExemplifiedA-40280B-308202.07
compound 2442
ExemplifiedA-40235B-308652.12
compound 2443
ExemplifiedA-40220B-308802.13
compound 2444
ExemplifiedA-40249B-401512.14
compound 2445
ExemplifiedA-40280B-401202.09
compound 2446
ExemplifiedA-40235B-401652.16
compound 2447
ExemplifiedA-40220B-401802.19
compound 2448
ExemplifiedA-40249B-402512.18
compound 2449
ExemplifiedA-40280B-402202.10
compound 2450
ExemplifiedA-40235B-402652.21
compound 2451
ExemplifiedA-40220B-402802.25
compound 2452
ExemplifiedA-40249B-403512.23
compound 2453
ExemplifiedA-40280B-403202.13
compound 2454
ExemplifiedA-40235B-403652.28
compound 2455
ExemplifiedA-40220B-403802.34
compound 2456
ExemplifiedA-40249B-404512.11
compound 2457
ExemplifiedA-40280B-404202.08
compound 2458
ExemplifiedA-40235B-404652.13
compound 2459
ExemplifiedA-40220B-404802.14
compound 2460
ExemplifiedA-40249B-405512.17
compound 2461
ExemplifiedA-40280B-405202.10
compound 2462
ExemplifiedA-40235B-405652.21
compound 2463
ExemplifiedA-40220B-405802.24
compound 2464
ExemplifiedA-40349B-101512.04
compound 2465
ExemplifiedA-40380B-101202.00
compound 2466
ExemplifiedA-40335B-101652.06
compound 2467
ExemplifiedA-40320B-101802.08
compound 2468
ExemplifiedA-40349B-102512.10
compound 2469
ExemplifiedA-40380B-102202.02
compound 2470
ExemplifiedA-40335B-102652.13
compound 2471
ExemplifiedA-40320B-102802.16
compound 2472
ExemplifiedA-40349B-103512.04
compound 2473
ExemplifiedA-40380B-103202.00
compound 2474
ExemplifiedA-40335B-103652.06
compound 2475
ExemplifiedA-40320B-103802.08
compound 2476
ExemplifiedA-40349B-104512.02
compound 2477
ExemplifiedA-40380B-104201.99
compound 2478
ExemplifiedA-40335B-104652.04
compound 2479
ExemplifiedA-40320B-104802.05
compound 2480
ExemplifiedA-40349B-105512.04
compound 2481
ExemplifiedA-40380B-105202.00
compound 2482
ExemplifiedA-40335B-105652.05
compound 2483
ExemplifiedA-40320B-105802.07
compound 2484
ExemplifiedA-40349B-201512.09
compound 2485
ExemplifiedA-40380B-201202.02
compound 2486
ExemplifiedA-40335B-201652.12
compound 2487
ExemplifiedA-40320B-201802.16
compound 2488
ExemplifiedA-40349B-202512.03
compound 2489
ExemplifiedA-40380B-202202.00
compound 2490
ExemplifiedA-40335B-202652.05
compound 2491
ExemplifiedA-40320B-202802.07
compound 2492
ExemplifiedA-40349B-203512.07
compound 2493
ExemplifiedA-40380B-203202.01
compound 2494
ExemplifiedA-40335B-203652.09
compound 2495
ExemplifiedA-40320B-203802.12
compound 2496
ExemplifiedA-40349B-204512.03
compound 2497
ExemplifiedA-40380B-204202.00
compound 2498
ExemplifiedA-40335B-204652.04
compound 2499
ExemplifiedA-40320B-204802.05
compound 2500
ExemplifiedA-40349B-205512.06
compound 2501
ExemplifiedA-40380B-205202.01
compound 2502
ExemplifiedA-40335B-205652.09
compound 2503
ExemplifiedA-40320B-205802.11
compound 2504
ExemplifiedA-40349B-301512.06
compound 2505
ExemplifiedA-40380B-301202.01
compound 2506
ExemplifiedA-40335B-301652.08
compound 2507
ExemplifiedA-40320B-301802.10
compound 2508
ExemplifiedA-40349B-302512.06
compound 2509
ExemplifiedA-40380B-302202.01
compound 2510
ExemplifiedA-40335B-302652.08
compound 2511
ExemplifiedA-40320B-302802.10
compound 2512
ExemplifiedA-40349B-303512.07
compound 2513
ExemplifiedA-40380B-303202.01
compound 2514
ExemplifiedA-40335B-303652.09
compound 2515
ExemplifiedA-40320B-303802.12
compound 2516
ExemplifiedA-40349B-304512.06
compound 2517
ExemplifiedA-40380B-304202.01
compound 2518
ExemplifiedA-40335B-304652.08
compound 2519
ExemplifiedA-40320B-304802.11
compound 2520
ExemplifiedA-40349B-305512.01
compound 2521
ExemplifiedA-40380B-305201.99
compound 2522
ExemplifiedA-40335B-305652.01
compound 2523
ExemplifiedA-40320B-305802.02
compound 2524
ExemplifiedA-40349B-306512.07
compound 2525
ExemplifiedA-40380B-306202.01
compound 2526
ExemplifiedA-40335B-306652.10
compound 2527
ExemplifiedA-40320B-306802.13
compound 2528
ExemplifiedA-40349B-307512.05
compound 2529
ExemplifiedA-40380B-307202.01
compound 2530
ExemplifiedA-40335B-307652.08
compound 2531
ExemplifiedA-40320B-307802.10
compound 2532
ExemplifiedA-40349B-308512.06
compound 2533
ExemplifiedA-40380B-308202.01
compound 2534
ExemplifiedA-40335B-308652.09
compound 2535
ExemplifiedA-40320B-308802.11
compound 2536
ExemplifiedA-40349B-401512.10
compound 2537
ExemplifiedA-40380B-401202.03
compound 2538
ExemplifiedA-40335B-401652.13
compound 2539
ExemplifiedA-40320B-401802.17
compound 2540
ExemplifiedA-40349B-402512.14
compound 2541
ExemplifiedA-40380B-402202.04
compound 2542
ExemplifiedA-40335B-402652.19
compound 2543
ExemplifiedA-40320B-402802.24
compound 2544
ExemplifiedA-40349B-403512.20
compound 2545
ExemplifiedA-40380B-403202.06
compound 2546
ExemplifiedA-40335B-403652.26
compound 2547
ExemplifiedA-40320B-403802.32
compound 2548
ExemplifiedA-40349B-404512.07
compound 2549
ExemplifiedA-40380B-404202.01
compound 2550
ExemplifiedA-40335B-404652.10
compound 2551
ExemplifiedA-40320B-404802.13
compound 2552
ExemplifiedA-40349B-405512.13
compound 2553
ExemplifiedA-40380B-405202.04
compound 2554
ExemplifiedA-40335B-405652.18
compound 2555
ExemplifiedA-40320B-405802.22
compound 2556
ExemplifiedA-40449B-101512.08
compound 2557
ExemplifiedA-40480B-101202.07
compound 2558
ExemplifiedA-40435B-101652.09
compound 2559
ExemplifiedA-40420B-101802.10
compound 2560
TABLE 11 — Specific examples of polycarbonate resins
Group AGroup B
Propor-Propor-Dielec-
ExemplifiedStructuraltionStructuraltiontric
compound No.unit(mol %)unit(mol %)constant
ExemplifiedA-40449B-102512.14
compound 2561
ExemplifiedA-40480B-102202.09
compound 2562
ExemplifiedA-40435B-102652.16
compound 2563
ExemplifiedA-40420B-102802.18
compound 2564
ExemplifiedA-40449B-103512.08
compound 2565
ExemplifiedA-40480B-103202.07
compound 2566
ExemplifiedA-40435B-103652.09
compound 2567
ExemplifiedA-40420B-103802.10
compound 2568
ExemplifiedA-40449B-104512.06
compound 2569
ExemplifiedA-40480B-104202.06
compound 2570
ExemplifiedA-40435B-104652.06
compound 2571
ExemplifiedA-40420B-104802.07
compound 2572
ExemplifiedA-40449B-105512.08
compound 2573
ExemplifiedA-40480B-105202.07
compound 2574
ExemplifiedA-40435B-105652.08
compound 2575
ExemplifiedA-40420B-105802.09
compound 2576
ExemplifiedA-40449B-201512.13
compound 2577
ExemplifiedA-40480B-201202.09
compound 2578
ExemplifiedA-40435B-201652.15
compound 2579
ExemplifiedA-40420B-201802.17
compound 2580
ExemplifiedA-40449B-202512.07
compound 2581
ExemplifiedA-40480B-202202.06
compound 2582
ExemplifiedA-40435B-202652.08
compound 2583
ExemplifiedA-40420B-202802.08
compound 2584
ExemplifiedA-40449B-203512.11
compound 2585
ExemplifiedA-40480B-203202.08
compound 2586
ExemplifiedA-40435B-203652.12
compound 2587
ExemplifiedA-40420B-203802.13
compound 2588
ExemplifiedA-40449B-204512.07
compound 2589
ExemplifiedA-40480B-204202.06
compound 2590
ExemplifiedA-40435B-204652.07
compound 2591
ExemplifiedA-40420B-204802.07
compound 2592
ExemplifiedA-40449B-205512.10
compound 2593
ExemplifiedA-40480B-205202.08
compound 2594
ExemplifiedA-40435B-205652.12
compound 2595
ExemplifiedA-40420B-205802.13
compound 2596
ExemplifiedA-40449B-301512.10
compound 2597
ExemplifiedA-40480B-301202.07
compound 2598
ExemplifiedA-40435B-301652.11
compound 2599
ExemplifiedA-40420B-301802.12
compound 2600
ExemplifiedA-40449B-302512.10
compound 2601
ExemplifiedA-40480B-302202.07
compound 2602
ExemplifiedA-40435B-302652.11
compound 2603
ExemplifiedA-40420B-302802.12
compound 2604
ExemplifiedA-40449B-303512.11
compound 2605
ExemplifiedA-40480B-303202.08
compound 2606
ExemplifiedA-40435B-303652.12
compound 2607
ExemplifiedA-40420B-303802.13
compound 2608
ExemplifiedA-40449B-304512.10
compound 2609
ExemplifiedA-40480B-304202.07
compound 2610
ExemplifiedA-40435B-304652.11
compound 2611
ExemplifiedA-40420B-304802.12
compound 2612
ExemplifiedA-40449B-305512.05
compound 2613
ExemplifiedA-40480B-305202.05
compound 2614
ExemplifiedA-40435B-305652.04
compound 2615
ExemplifiedA-40420B-305802.04
compound 2616
ExemplifiedA-40449B-306512.11
compound 2617
ExemplifiedA-40480B-306202.08
compound 2618
ExemplifiedA-40435B-306652.13
compound 2619
ExemplifiedA-40420B-306802.14
compound 2620
ExemplifiedA-40449B-307512.09
compound 2621
ExemplifiedA-40480B-307202.07
compound 2622
ExemplifiedA-40435B-307652.10
compound 2623
ExemplifiedA-40420B-307802.12
compound 2624
ExemplifiedA-40449B-308512.10
compound 2625
ExemplifiedA-40480B-308202.08
compound 2626
ExemplifiedA-40435B-308652.12
compound 2627
ExemplifiedA-40420B-308802.13
compound 2628
ExemplifiedA-40449B-401512.14
compound 2629
ExemplifiedA-40480B-401202.09
compound 2630
ExemplifiedA-40435B-401652.16
compound 2631
ExemplifiedA-40420B-401802.19
compound 2632
ExemplifiedA-40449B-402512.18
compound 2633
ExemplifiedA-40480B-402202.11
compound 2634
ExemplifiedA-40435B-402652.22
compound 2635
ExemplifiedA-40420B-402802.25
compound 2636
ExemplifiedA-40449B-403512.24
compound 2637
ExemplifiedA-40480B-403202.13
compound 2638
ExemplifiedA-40435B-403652.28
compound 2639
ExemplifiedA-40420B-403802.34
compound 2640
ExemplifiedA-40449B-404512.11
compound 2641
ExemplifiedA-40480B-404202.08
compound 2642
ExemplifiedA-40435B-404652.13
compound 2643
ExemplifiedA-40420B-404802.14
compound 2644
ExemplifiedA-40449B-405512.17
compound 2645
ExemplifiedA-40480B-405202.10
compound 2646
ExemplifiedA-40435B-405652.21
compound 2647
ExemplifiedA-40420B-405802.24
compound 2648
ExemplifiedA-40549B-101512.07
compound 2649
ExemplifiedA-40580B-101202.04
compound 2650
ExemplifiedA-40535B-101652.08
compound 2651
ExemplifiedA-40520B-101802.09
compound 2652
ExemplifiedA-40549B-102512.12
compound 2653
ExemplifiedA-40580B-102202.06
compound 2654
ExemplifiedA-40535B-102652.14
compound 2655
ExemplifiedA-40520B-102802.17
compound 2656
ExemplifiedA-40549B-103512.07
compound 2657
ExemplifiedA-40580B-103202.04
compound 2658
ExemplifiedA-40535B-103652.08
compound 2659
ExemplifiedA-40520B-103802.09
compound 2660
ExemplifiedA-40549B-104512.04
compound 2661
ExemplifiedA-40580B-104202.03
compound 2662
ExemplifiedA-40535B-104652.05
compound 2663
ExemplifiedA-40520B-104802.06
compound 2664
ExemplifiedA-40549B-105512.06
compound 2665
ExemplifiedA-40580B-105202.04
compound 2666
ExemplifiedA-40535B-105652.07
compound 2667
ExemplifiedA-40520B-105802.08
compound 2668
ExemplifiedA-40549B-201512.11
compound 2669
ExemplifiedA-40580B-201202.06
compound 2670
ExemplifiedA-40535B-201652.14
compound 2671
ExemplifiedA-40520B-201802.17
compound 2672
ExemplifiedA-40549B-202512.06
compound 2673
ExemplifiedA-40580B-202202.04
compound 2674
ExemplifiedA-40535B-202652.07
compound 2675
ExemplifiedA-40520B-202802.08
compound 2676
ExemplifiedA-40549B-203512.09
compound 2677
ExemplifiedA-40580B-203202.05
compound 2678
ExemplifiedA-40535B-203652.11
compound 2679
ExemplifiedA-40520B-203802.13
compound 2680
TABLE 13 — Characteristics of polycarbonate resins
Group AGroup BWeight-average
Polycarbonateproportionproportionmolecular weight
resin No.(mol %)(mol %)Mw
PC-1495163000
PC-2495178000
PC-3495150000
PC-4495172000
PC-5495134000
PC-6495194000
PC-7406059000
PC-8257553000
PC-9208052000
PC-10703079000
PC-11495160000
PC-12495175000
PC-13495150000
PC-14495169000
PC-15495133000
PC-16495191000
PC-17406065000
PC-18257554000
PC-19208050000
PC-20703075000
PC-21495164000
PC-22495180000
PC-23495154000
PC-24495174000
PC-25495135000
PC-26495196000
PC-27406069000
PC-28257557000
PC-29208054000
PC-30703080000
PC-31495166000
PC-32495168000
PC-33495177000
PC-34495165000
PC-35010063000
TABLE 14 — Conditions for the production of electrophotographic photosensitive members and test results Charge gen- eration layer
Charge gen-Charge transport layerResult
erationPolycarbon-Solvent(s)Fog re-
Example No.materialate resin No.TypePartsduction
Example 1-1Ga-1PC-1Xy/DMM70/20AA
Example 1-2Ga-1PC-2Xy/DMM70/20AA
Example 1-3Ga-2PC-3Xy/DMM70/20A
Example 1-4Ga-2PC-4Xy/DMM70/20A
Example 1-5Ga-2PC-5Xy/DMM70/20B
Example 1-6Ga-2PC-6Xy/DMM70/20B
Example 1-7Ga-2PC-5THF90C
Example 1-8Ga-2PC-1THF90B
Example 1-9Ga-2PC-7THF90B
Example 1-10Ga-2PC-8THF90B
Example 1-11Ga-2PC-9THF90C
Example 1-12Ga-2PC-10THF90C
Example 1-13Ga-2PC-13Xy/DMM70/20B
Example 1-14Ga-2PC-14Xy/DMM70/20B
Example 1-15Ga-2PC-15Xy/DMM70/20C
Example 1-16Ga-2PC-16Xy/DMM70/20C
Example 1-17Ga-2PC-15THF90D
Example 1-18Ga-2PC-11THF90C
Example 1-19Ga-2PC-17THF90C
Example 1-20Ga-2PC-18THF90C
Example 1-21Ga-2PC-19THF90B
Example 1-22Ga-2PC-20THF90B
Example 1-23Ga-2PC-23Xy/DMM70/20C
Example 1-24Ga-2PC-24Xy/DMM70/20C
Example 1-25Ga-2PC-25Xy/DMM70/20D
Example 1-26Ga-2PC-26Xy/DMM70/20D
Example 1-27Ga-2PC-25THF90E
Example 1-28Ga-2PC-21THF90D
Example 1-29Ga-2PC-27THF90D
Example 1-30Ga-2PC-28THF90D
Example 1-31Ga-2PC-29THF90C
Example 1-32Ga-2PC-30THF90C
Example 1-33Ga-3PC-31Xy/DMM70/20AA
Example 1-34Ga-4PC-32Xy/DMM70/20A
Example 1-35Ga-2PC-33Xy/DMM70/20D
Example 1-36Ga-5PC-12Xy/DMM70/20C
Example 1-37Ga-5PC-12Xy/DMM70/20C
ComparativeGa-6PC-34Xy/DMM70/20F
Example 1-1
ComparativeGa-6PC-34THF90G
Example 1-2
ComparativeGa-6PC-35Xy/DMM70/20—
Example 1-3
TABLE 15 — Conditions for the manufacture of photosensitive members
Charge gen-Charge transport layer
Conductiveeration layerCharge transport
layerUndercoatCharge gen-material(s)Charge transport
Used/layererationResinMassmaterial(s)/resinSolvent(s)
Example No.Not usedTypematerialTypeMwTyperatioin partsTypeParts
Example 2-1◯UCL-1Ga-1100163000102/2059/19/10Xy/DMM70/20
Example 2-2◯UCL-1Ga-7100156000102/2059/19/10Xy/DMM70/20
Example 2-3◯UCL-1Ga-7100138000102/2059/19/10Xy/DMM70/20
Example 2-4◯UCL-1Ga-7100177000102/2059/19/10Xy/DMM70/20
Example 2-5◯UCL-1Ga-7100195000102/2059/19/10Xy/DMM70/20
Example 2-6◯UCL-1Ga-7100256000102/2059/19/10Xy/DMM70/20
Example 2-7◯UCL-1Ga-7100236000102/2059/19/10Xy/DMM70/20
Example 2-8◯UCL-1Ga-7100280000102/2059/19/10Xy/DMM70/20
Example 2-9◯UCL-1Ga-7100294000102/2059/19/10Xy/DMM70/20
Example 2-10◯UCL-1Ga-7100351000102/2059/19/10Xy/DMM70/20
Example 2-11◯UCL-1Ga-7100338000102/2059/19/10Xy/DMM70/20
Example 2-12◯UCL-1Ga-7100378000102/2059/19/10Xy/DMM70/20
Example 2-13◯UCL-1Ga-7100397000102/2059/19/10Xy/DMM70/20
Example 2-14◯UCL-1Ga-7100156000102/2059/16/10Xy/DMM70/20
Example 2-15◯UCL-1Ga-7100156000102/3059/19/10Xy/DMM70/20
Example 2-16◯UCL-1Ga-7100156000102/2019/19/10Xy/DMM70/20
Example 2-17◯UCL-1Ga-7100156000405—9/10Xy/DMM70/20
Example 2-18◯UCL-1Ga-7100156000302—9/10Xy/DMM70/20
Example 2-19◯UCL-1Ga-7100156000705—9/10Xy/DMM70/20
Example 2-20◯UCL-1Ga-7100156000603—9/10Xy/DMM70/20
Example 2-21◯UCL-1Ga-7100138000603—9/10Xy/DMM70/20
Example 2-22◯UCL-1Ga-7100177000603—9/10Xy/DMM70/20
Example 2-23◯UCL-1Ga-7100195000603—9/10Xy/DMM70/20
Example 2-24◯UCL-1Ga-7100256000603—9/10Xy/DMM70/20
Example 2-25◯UCL-1Ga-7100236000603—9/10Xy/DMM70/20
Example 2-26◯UCL-1Ga-7100280000603—9/10Xy/DMM70/20
Example 2-27◯UCL-1Ga-7100294000603—9/10Xy/DMM70/20
Example 2-28◯UCL-1Ga-7100351000603—9/10Xy/DMM70/20
Example 2-29◯UCL-1Ga-7100338000603—9/10Xy/DMM70/20
Example 2-30◯UCL-1Ga-7100378000603—9/10Xy/DMM70/20
Example 2-31◯UCL-1Ga-7100397000603—9/10Xy/DMM70/20
Example 2-32◯UCL-1Ga-7100156000603—6/10Xy/DMM70/20
Example 2-33◯UCL-1Ga-7100156000603—4/10Xy/DMM70/20
Example 2-34◯UCL-1Ga-7100156000211—9/10Xy/DMM70/20
Example 2-35◯UCL-1Ga-7100156000501—9/10Xy/DMM70/20
Example 2-36◯UCL-1Ga-7100156000309—9/10Xy/DMM70/20
Example 2-37◯UCL-1Ga-7100156000605—9/10Xy/DMM70/20
Example 2-38◯UCL-1Ga-7100138000605—9/10Xy/DMM70/20
Example 2-39◯UCL-1Ga-7100177000605—9/10Xy/DMM70/20
Example 2-40◯UCL-1Ga-7100195000605—9/10Xy/DMM70/20
Example 2-41◯UCL-1Ga-7100256000605—9/10Xy/DMM70/20
Example 2-42◯UCL-1Ga-7100236000605—9/10Xv/DMM70/20
Example 2-43◯UCL-1Ga-7100280000605—9/10Xy/DMM70/20
Example 2-44◯UCL-1Ga-7100294000605—9/10Xy/DMM70/20
Example 2-45◯UCL-1Ga-7100351000605—9/10Xy/DMM70/20
Example 2-46◯UCL-1Ga-7100338000605—9/10Xy/DMM70/20
Example 2-47◯UCL-1Ga-7100378000605—9/10Xy/DMM70/20
Example 2-48◯UCL-1Ga-7100397000605—9/10Xy/DMM70/20
Example 2-49◯UCL-1Ga-7100156000605—6/10Xy/DMM70/20
Example 2-50◯UCL-1Ga-7100156000605—4/10Xy/DMM70/20
TABLE 16 — Conditions for the manufacture of photosensitive members
Charge gen-Charge transport layer
Conductiveeration layerCharge transport
layerUndercoatCharge gen-material(s)Charge transport
Used/layererationResinMassmaterial(s)/resinSolvent(s)
Example No.Not usedTypematerialTypeMwTyperatioin partsTypeParts
Example 2-51◯UCL-1Ga-7100156000606—9/10Xy/DMM70/20
Example 2-52◯UCL-1Ga-7100156000505—9/10Xy/DMM70/20
Example 2-53◯UCL-1Ga-3100156000102/2059/19/10Xy/DMM70/20
Example 2-54◯UCL-1Ga-4100156000102/2059/19/10Xy/DMM70/20
Example 2-55◯UCL-2Ga-7100156000102/2059/19/10Xy/DMM70/20
Example 2-56—UCL-3Ga-7100156000102/2059/19/10Xy/DMM70/20
Example 2-57◯UCL-1CGM-1100156000603—9/10Xy/DMM70/20
Example 2-58◯UCL-1CGM-2100156000304—9/10Xy/DMM70/20
Example 2-59◯UCL-1Ga-7100156000102/2059/19/10THF90
Example 2-60◯UCL-1Ga-7100458000102/2059/19/10THF90
Example 2-61◯UCL-1Ga-7100552000102/2059/19/10Xy/DMM70/20
Example 2-62◯UCL-1Ga-7100951000102/2059/19/10Xy/DMM70/20
Example 2-63◯UCL-1Ga-7109351000102/2059/19/10Xy/DMM70/20
Example 2-64◯UCL-1Ga-7109752000102/2059/19/10Xy/DMM70/20
Example 2-65◯UCL-1Ga-7110150000102/2059/19/10Xy/DMM70/20
Example 2-66◯UCL-1Ga-7102150000102/2059/19/10Xy/DMM70/20
Example 2-67◯UCL-1Ga-7102134000102/2059/19/10Xy/DMM70/20
Example 2-68◯UCL-1Ga-7102175000102/2059/19/10Xy/DMM70/20
Example 2-69◯UCL-1Ga-7102257000102/2059/19/10Xy/DMM70/20
Example 2-70◯UCL-1Ga-7102234000102/2059/19/10Xy/DMM70/20
Example 2-71◯UCL-1Ga-7102278000102/2059/19/10Xy/DMM70/20
Example 2-72◯UCL-1Ga-7102150000102/2059/16/10Xy/DMM70/20
Example 2-73◯UCL-1Ga-7102150000102/3059/19/10Xy/DMM70/20
Example 2-74◯UCL-1Ga-7102150000102/2019/19/10Xy/DMM70/20
Example 2-75◯UCL-1Ga-7102150000405—9/10Xy/DMM70/20
Example 2-76◯UCL-1Ga-7102150000302—9/10Xy/DMM70/20
Example 2-77◯UCL-1Ga-7102150000705—9/10Xy/DMM70/20
Example 2-78◯UCL-1Ga-7102150000603—9/10Xy/DMM70/20
Example 2-79◯UCL-1Ga-7102134000603—9/10Xy/DMM70/20
Example 2-80◯UCL-1Ga-7102175000603—9/10Xy/DMM70/20
Example 2-81◯UCL-1Ga-7102257000603—9/10Xy/DMM70/20
Example 2-82◯UCL-1Ga-7102234000603—9/10Xy/DMM70/20
Example 2-83◯UCL-1Ga-7102278000603—9/10Xy/DMM70/20
Example 2-84◯UCL-1Ga-7102150000603—6/10Xy/DMM70/20
Example 2-85◯UCL-1Ga-7102150000603—4/10Xy/DMM70/20
Example 2-86◯UCL-1Ga-7102150000211—9/10Xy/DMM70/20
Example 2-87◯UCL-1Ga-7102150000501—9/10Xy/DMM70/20
Example 2-88◯UCL-1Ga-7102150000309—9/10Xy/DMM70/20
Example 2-89◯UCL-1Ga-7102150000605—9/10Xy/DMM70/20
Example 2-90◯UCL-1Ga-7102134000605—9/10Xy/DMM70/20
Example 2-91◯UCL-1Ga-7102175000605—9/10Xy/DMM70/20
Example 2-92◯UCL-1Ga-7102257000605—9/10Xy/DMM70/20
Example 2-93◯UCL-1Ga-7102234000605—9/10Xy/DMM70/20
Example 2-94◯UCL-1Ga-7102278000605—9/10Xy/DMM70/20
Example 2-95◯UCL-1Ga-7102150000605—6/10Xy/DMM70/20
Example 2-96◯UCL-1Ga-7102150000605—4/10Xy/DMM70/20
Example 2-97◯UCL-1Ga-7102150000606—9/10Xy/DMM70/20
Example 2-98◯UCL-1Ga-7102150000505—9/10Xy/DMM70/20
Example 2-99◯UCL-1Ga-3102150000102/2059/19/10Xy/DMM70/20
Example 2-100◯UCL-1Ga-4102150000102/2059/19/10Xy/DMM70/20
TABLE 17 — Conditions for the manufacture of photosensitive members
Charge gen-Charge transport layer
Conductiveeration layerCharge transport
layerUndercoatCharge gen-material(s)Charge transport
Used/layererationResinMassmaterial(s)/resinSolvent(s)
Example No.Not usedTypematerialTypeMwTyperatioin partsTypeParts
Example 2-101◯UCL-2Ga-7102150000102/2059/19/10Xy/DMM70/20
Example 2-102—UCL-3Ga-7102150000102/2059/19/10Xy/DMM70/20
Example 2-103◯UCL-1CGM-1102150000603—9/10Xy/DMM70/20
Example 2-104◯UCL-1CGM-2102150000304—9/10Xy/DMM70/20
Example 2-105◯UCL-1Ga-7102150000102/2059/19/10THF90
Example 2-106◯UCL-1Ga-7111356000102/2059/19/10Xy/DMM70/20
Example 2-107◯UCL-1Ga-7104552000102/2059/19/10Xy/DMM70/20
Example 2-108◯UCL-1Ga-7104552000102/2059/19/10Xy/DMM70/20
Example 2-109◯UCL-1Ga-7104552000102/2059/19/10Xy/DMM70/20
Example 2-110◯UCL-1Ga-7104552000102/2059/19/10Xy/DMM70/20
Example 2-111◯UCL-1Ga-7104658000102/2059/19/10Xy/DMM70/20
Example 2-112◯UCL-1Ga-7104658000102/2059/19/10Xy/DMM70/20
Example 2-113◯UCL-1Ga-7104658000102/2059/19/10Xy/DMM70/20
Example 2-114◯UCL-1Ga-7104658000102/2059/19/10Xy/DMM70/20
Example 2-115◯UCL-1Ga-7104758000102/2059/19/10Xy/DMM70/20
Example 2-116◯UCL-1Ga-7104758000102/2059/19/10Xy/DMM70/20
Example 2-117◯UCL-1Ga-7104758000102/2059/19/10Xy/DMM70/20
Example 2-118◯UCL-1Ga-7104758000102/2059/19/10Xy/DMM70/20
Example 2-119◯UCL-1Ga-7104552000102/2059/16/10Xy/DMM70/20
Example 2-120◯UCL-1Ga-7104552000211—9/10Xy/DMM70/20
Example 2-121◯UCL-1Ga-7104552000211—6/10Xy/DMM70/20
Example 2-122◯UCL-1Ga-7104552000211—4/10Xy/DMM70/20
Example 2-123◯UCL-1Ga-7104552000307—9/10Xy/DMM70/20
Example 2-124◯UCL-1Ga-7104552000307—6/10Xy/DMM70/20
Example 2-125◯UCL-1Ga-7104552000307—4/10Xy/DMM70/20
Example 2-126◯UCL-1CGM-1104552000602—9/10Xy/DMM70/20
Example 2-127◯UCL-1Ga-7104552000602—9/10THF90
Example 2-128◯UCL-1Ga-7104858000602—9/10THF90
Example 2-129◯UCL-1Ga-7113753000102/2059/19/10Xy/DMM70/20
Example 2-130◯UCL-1Ga-7106550000102/2059/19/10Xy/DMM70/20
Example 2-131◯UCL-1Ga-7106554000102/2059/19/10Xy/DMM70/20
Example 2-132◯UCL-1Ga-7106554000102/2059/19/10Xy/DMM70/20
Example 2-133◯UCL-1Ga-7106554000102/2059/19/10Xy/DMM70/20
Example 2-134◯UCL-1Ga-7106554000102/2059/19/10Xy/DMM70/20
Example 2-135◯UCL-1Ga-7106652000102/2059/19/10Xy/DMM70/20
Example 2-136◯UCL-1Ga-7106652000102/2059/19/10Xy/DMM70/20
Example 2-137◯UCL-1Ga-7106652000102/2059/19/10Xy/DMM70/20
Example 2-138◯UCL-1Ga-7106652000102/2059/19/10Xy/DMM70/20
Example 2-139◯UCL-1Ga-7106752000102/2059/19/10Xy/DMM70/20
Example 2-140◯UCL-1Ga-7106752000102/2059/19/10Xy/DMM70/20
Example 2-141◯UCL-1Ga-7106752000102/2059/19/10Xy/DMM70/20
Example 2-142◯UCL-1Ga-7106752000102/2059/19/10Xy/DMM70/20
Example 2-143◯UCL-1Ga-7106554000102/2059/16/10Xy/DMM70/20
Example 2-144◯UCL-1Ga-7106554000603—9/10Xy/DMM70/20
Example 2-145◯UCL-1Ga-7106554000603—6/10Xy/DMM70/20
Example 2-146◯UCL-1Ga-7106554000603—4/10Xy/DMM70/20
Example 2-147◯UCL-1Ga-7106554000605—9/10Xy/DMM70/20
Example 2-148◯UCL-1Ga-7106554000605—6/10Xy/DMM70/20
Example 2-149◯UCL-1Ga-7106554000605—4/10Xy/DMM70/20
Example 2-150◯UCL-1Ga-7106554000201—9/10THF90
TABLE 18 — Conditions for the manufacture of photosensitive members
Charge gen-Charge transport layer
Conductiveeration layerCharge transport
layerUndercoatCharge gen-material(s)Charge transport
Used/layererationResinMassmaterial(s)/resinSolvent(s)
Example No.Not usedTypematerialTypeMwTyperatioin partsTypeParts
Example 2-151◯UCL-1Ga-7106856000201—9/10THF90
Example 2-152◯UCL-1Ga-7115757000102/2059/19/10Xy/DMM70/20
Example 2-153◯UCL-1Ga-7104956000102/2059/19/10Xy/DMM70/20
Example 2-154◯UCL-1Ga-7104956000102/2059/19/10Xy/DMM70/20
Example 2-155◯UCL-1Ga-7104956000102/2059/19/10Xy/DMM70/20
Example 2-156◯UCL-1Ga-7104956000102/2059/19/10Xy/DMM70/20
Example 2-157◯UCL-1Ga-7105052000102/2059/19/10Xy/DMM70/20
Example 2-158◯UCL-1Ga-7105052000102/2059/19/10Xy/DMM70/20
Example 2-159◯UCL-1Ga-7105052000102/2059/19/10Xy/DMM70/20
Example 2-160◯UCL-1Ga-7105052000102/2059/19/10Xy/DMM70/20
Example 2-161◯UCL-1Ga-7105152000102/2059/19/10Xy/DMM70/20
Example 2-162◯UCL-1Ga-7105152000102/2059/19/10Xy/DMM70/20
Example 2-163◯UCL-1Ga-7105152000102/2059/19/10Xy/DMM70/20
Example 2-164◯UCL-1Ga-7105152000102/2059/19/10Xy/DMM70/20
Example 2-165◯UCL-1Ga-7104954000102/2059/16/10Xy/DMM70/20
Example 2-166◯UCL-1Ga-7104954000309—9/10Xy/DMM70/20
Example 2-167◯UCL-1Ga-7104954000309—6/10Xy/DMM70/20
Example 2-168◯UCL-1Ga-7104954000309—4/10Xy/DMM70/20
Example 2-169◯UCL-1Ga-7104954000405—9/10Xy/DMM70/20
Example 2-170◯UCL-1Ga-7104954000405—6/10Xy/DMM70/20
Example 2-171◯UCL-1CGM-1104954000705—9/10Xy/DMM70/20
Example 2-172◯UCL-1Ga-7104954000705—9/10THF90
Example 2-173◯UCL-1Ga-7105258000705—9/10THF90
Example 2-174◯UCL-1Ga-7114151000102/2059/19/10Xy/DMM70/20
Example 2-175◯UCL-1Ga-7107355000102/2059/19/10Xy/DMM70/20
Example 2-176◯UCL-1Ga-7107337000102/2059/19/10Xy/DMM70/20
Example 2-177◯UCL-1Ga-7107376000102/2059/19/10Xy/DMM70/20
Example 2-178◯UCL-1Ga-7107398000102/2059/19/10Xy/DMM70/20
Example 2-179◯UCL-1Ga-7107451000102/2059/19/10Xy/DMM70/20
Example 2-180◯UCL-1Ga-7107438000102/2059/19/10Xy/DMM70/20
Example 2-181◯UCL-1Ga-7107470000102/2059/19/10Xy/DMM70/20
Example 2-182◯UCL-1Ga-7107492000102/2059/19/10Xy/DMM70/20
Example 2-183◯UCL-1Ga-7107558000102/2059/19/10Xy/DMM70/20
Example 2-184◯UCL-1Ga-7107536000102/2059/19/10Xy/DMM70/20
Example 2-185◯UCL-1Ga-7107578000102/2059/19/10Xy/DMM70/20
Example 2-186◯UCL-1Ga-7107594000102/2059/19/10Xy/DMM70/20
Example 2-187◯UCL-1Ga-7108156000102/2059/19/10Xy/DMM70/20
Example 2-188◯UCL-1Ga-7116555000102/2059/19/10Xy/DMM70/20
Example 2-189◯UCL-1Ga-7117356000102/2059/19/10Xy/DMM70/20
Example 2-190◯UCL-1Ga-7146172000102/2059/19/10Xy/DMM70/20
Example 2-191◯UCL-1Ga-7146154000102/2059/19/10Xy/DMM70/20
Example 2-192◯UCL-1Ga-7146136000102/2059/19/10Xy/DMM70/20
Example 2-193◯UCL-1Ga-7146177000102/2059/19/10Xy/DMM70/20
Example 2-194◯UCL-1Ga-7146256000102/2059/19/10Xy/DMM70/20
Example 2-195◯UCL-1Ga-7146230000102/2059/19/10Xy/DMM70/20
Example 2-196◯UCL-1Ga-7146270000102/2059/19/10Xy/DMM70/20
Example 2-197◯UCL-1Ga-7146551000102/2059/19/10Xy/DMM70/20
Example 2-198◯UCL-1Ga-7146954000102/2059/19/10Xy/DMM70/20
Example 2-199◯UCL-1Ga-7155357000102/2059/19/10Xy/DMM70/20
Example 2-200◯UCL-1Ga-7155759000102/2059/19/10Xy/DMM70/20
TABLE 19 — Conditions for the manufacture of photosensitive members
Charge gen-Charge transport layer
Conductiveeration layerCharge transport
layerUndercoatCharge gen-material(s)Charge transport
Used/layererationResinMassmaterial(s)/resinSolvent(s)
Example No.Not usedTypematerialTypeMwTyperatioin partsTypeParts
Example 2-201◯UCL-1Ga-7156157000102/2059/19/10Xy/DMM70/20
Example 2-202◯UCL-1Ga-7148156000102/2059/19/10Xy/DMM70/20
Example 2-203◯UCL-1Ga-7148130000102/2059/19/10Xy/DMM70/20
Example 2-204◯UCL-1Ga-7148178000102/2059/19/10Xy/DMM70/20
Example 2-205◯UCL-1Ga-7148256000102/2059/19/10Xy/DMM70/20
Example 2-206◯UCL-1Ga-7148231000102/2059/19/10Xy/DMM70/20
Example 2-207◯UCL-1Ga-7148271000102/2059/19/10Xy/DMM70/20
Example 2-208◯UCL-1Ga-7157357000102/2059/19/10Xy/DMM70/20
Example 2-209◯UCL-1Ga-7150552000211—9/10Xy/DMM70/20
Example 2-210◯UCL-1Ga-7150537000211—9/10Xy/DMM70/20
Example 2-211◯UCL-1Ga-7150570000211—9/10Xy/DMM70/20
Example 2-212◯UCL-1Ga-7150659000211—9/10Xy/DMM70/20
Example 2-213◯UCL-1Ga-7150633000211—9/10Xy/DMM70/20
Example 2-214◯UCL-1Ga-7150673000211—9/10Xy/DMM70/20
Example 2-215◯UCL-1Ga-7159750000211—9/10Xy/DMM70/20
Example 2-216◯UCL-1Ga-7152559000603—9/10Xy/DMM70/20
Example 2-217◯UCL-1Ga-7152539000603—9/10Xy/DMM70/20
Example 2-218◯UCL-1Ga-7152570000603—9/10Xy/DMM70/20
Example 2-219◯UCL-1Ga-7152653000603—9/10Xy/DMM70/20
Example 2-220◯UCL-1Ga-7152631000603—9/10Xy/DMM70/20
Example 2-221◯UCL-1Ga-7152671000603—9/10Xy/DMM70/20
Example 2-222◯UCL-1Ga-7161750000603—9/10Xy/DMM70/20
Example 2-223◯UCL-1Ga-7150959000309—9/10Xy/DMM70/20
Example 2-224◯UCL-1Ga-7150933000309—9/10Xy/DMM70/20
Example 2-225◯UCL-1Ga-7150979000309—9/10Xy/DMM70/20
Example 2-226◯UCL-1Ga-7151056000309—9/10Xy/DMM70/20
Example 2-227◯UCL-1Ga-7151039000309—9/10Xy/DMM70/20
Example 2-228◯UCL-1Ga-7151074000309—9/10Xy/DMM70/20
Example 2-229◯UCL-1Ga-7160150000309—9/10Xy/DMM70/20
Example 2-230◯UCL-1Ga-7153359000102/2059/19/10Xy/DMM70/20
Example 2-231◯UCL-1Ga-7153330000102/2059/19/10Xy/DMM70/20
Example 2-232◯UCL-1Ga-7153373000102/2059/19/10Xy/DMM70/20
Example 2-233◯UCL-1Ga-7153450000102/2059/19/10Xy/DMM70/20
Example 2-234◯UCL-1Ga-7153439000102/2059/19/10Xy/DMM70/20
Example 2-235◯UCL-1Ga-7153474000102/2059/19/10Xy/DMM70/20
Example 2-236◯UCL-1Ga-7154154000102/2059/19/10Xy/DMM70/20
Example 2-237◯UCL-1Ga-7162552000102/2059/19/10Xy/DMM70/20
Example 2-238◯UCL-1Ga-7163350000102/2059/19/10Xy/DMM70/20
Example 2-239◯UCL-1Ga-7228169000102/2059/19/10Xy/DMM70/20
Example 2-240◯UCL-1Ga-7228155000102/2059/19/10Xy/DMM70/20
Example 2-241◯UCL-1Ga-7228130000102/2059/19/10Xy/DMM70/20
Example 2-242◯UCL-1Ga-7228178000102/2059/19/10Xy/DMM70/20
Example 2-243◯UCL-1Ga-7228257000102/2059/19/10Xy/DMM70/20
Example 2-244◯UCL-1Ga-7228235000102/2059/19/10Xy/DMM70/20
Example 2-245◯UCL-1Ga-7228277000102/2059/19/10Xy/DMM70/20
Example 2-246◯UCL-1Ga-7228551000102/2059/19/10Xy/DMM70/20
Example 2-247◯UCL-1Ga-7228955000102/2059/19/10Xy/DMM70/20
Example 2-248◯UCL-1Ga-7237355000102/2059/19/10Xy/DMM70/20
Example 2-249◯UCL-1Ga-7237754000102/2059/19/10Xy/DMM70/20
Example 2-250◯UCL-1Ga-7238158000102/2059/19/10Xy/DMM70/20
TABLE 21 — Test results
CoatingElectrophotographic photosensitive member
liquidElectricalResponseLong-term
StorageFogcharacteristicsin rapidstoragePhotomemory
Example No.stabilityreductionSensitivityafter repeated userecordingstabilityprevention
Example 2-1AAA9144AAA
Example 2-2AA10538AAA
Example 2-3AB10538AAA
Example 2-4AA11046AAA
Example 2-5BB10839AAA
Example 2-6BB11144AAB
Example 2-7BC11039AAB
Example 2-8BB11135AAB
Example 2-9CC10845AAB
Example 2-10AAA11144AAA
Example 2-11AA11436AAA
Example 2-12AAA11137AAA
Example 2-13BA11338AAA
Example 2-14BAA12275BAA
Example 2-15AA11138AAA
Example 2-16AA10747AAA
Example 2-17AB11135AAA
Example 2-18AB10836AAA
Example 2-19AB10838AAA
Example 2-20AA9127ABB
Example 2-21AB9827ABB
Example 2-22AA9626ABB
Example 2-23BB10030ABB
Example 2-24BB9230ABB
Example 2-25BC10030ABB
Example 2-26BB9031ABB
Example 2-27CC9331ABB
Example 2-28AA9828ABB
Example 2-29AB9131ABB
Example 2-30AA9930ABB
Example 2-31BB9633ABB
Example 2-32BAA11140ABB
Example 2-33CAA11057BAA
Example 2-34AA9527ABB
Example 2-35AA9428ABB
Example 2-36AA9427ABB
Example 2-37AA8218ACC
Example 2-38AB7721ACC
Example 2-39AA8216ACC
Example 2-40BA8323ACC
Example 2-41BB8019ACD
Example 2-42BC8021ACD
Example 2-43BB8019ACD
Example 2-44CB8318ACD
Example 2-45AAA8315ACC
Example 2-46AA7617ACC
Example 2-47AAA8117ACC
Example 2-48BAA7917ACC
Example 2-49CAA9626ACC
Example 2-50CAA10940AAC
TABLE 22 — Test results
CoatingElectrophotographic photosensitive member
liquidElectricalResponseLong-term
StorageFogcharacteristicsin rapidstoragePhotomemory
Example No.stabilityreductionSensitivityafter repeated userecordingstabilityprevention
Example 2-51AA8315ACC
Example 2-52AA7817ACC
Example 2-53AA9739AAA
Example 2-54AA10643AAA
Example 2-55AA774AAA
Example 2-56AA1411AAA
Example 2-57AB8044ABD
Example 2-58AB12330ACB
Example 2-59AB10845AAA
Example 2-60AA11335AAA
Example 2-61AA11135AAA
Example 2-62AA11244BAB
Example 2-63AA10937AAA
Example 2-64AA11435AAA
Example 2-65AA10937BAB
Example 2-66AA14545AAA
Example 2-67AB14347AAA
Example 2-68AA13539AAA
Example 2-69BB11747AAB
Example 2-70BC12443AAB
Example 2-71BB11943AAB
Example 2-72BAA15558BAA
Example 2-73AA13936AAA
Example 2-74AA13840AAA
Example 2-75AB14141AAA
Example 2-76AB14136AAA
Example 2-77AB13836AAA
Example 2-78AA12928ABB
Example 2-79AB12629ABB
Example 2-80AA12427ABB
Example 2-81BB10627ABB
Example 2-82BC10828ABB
Example 2-83BB11031ABB
Example 2-84BAA13737ABB
Example 2-85CAA16062BAA
Example 2-86AA12226ABB
Example 2-87AA12130ABB
Example 2-88AA12526ABB
Example 2-89AA10723ACC
Example 2-90AB11419ACC
Example 2-91AA10820ACC
Example 2-92BB9117ACD
Example 2-93BC8719ACD
Example 2-94BB8920ACD
Example 2-95CAA10832ACC
Example 2-96CAA12137AAC
Example 2-97AA11221ACC
Example 2-98AA10717ACC
Example 2-99AA12144AAA
Example 2-100AA13838AAA
TABLE 23 — Test results
CoatingElectrophotographic photosensitive member
liquidElectricalResponseLong-term
StorageFogcharacteristicsin rapidstoragePhotomemory
Example No.stabilityreductionSensitivityafter repeated userecordingstabilityprevention
Example 2-101AA1153AAA
Example 2-102AA1723AAA
Example 2-103AB11246ABD
Example 2-104AB15030ACB
Example 2-105AB13745AAA
Example 2-106AA14037AAA
Example 2-107AB12841BAA
Example 2-108AC12537BAA
Example 2-109AB13038BAA
Example 2-110BC13041BAA
Example 2-111BC11236AAB
Example 2-112BD11745AAB
Example 2-113BC11741AAB
Example 2-114CD12044AAB
Example 2-115AA12646BAA
Example 2-116AB12742BAA
Example 2-117AA12836BAA
Example 2-118BB13139BAA
Example 2-119AA13859BAA
Example 2-120AB10927ABB
Example 2-121BA12737BBB
Example 2-122BAA14556BAA
Example 2-123AB11331ABB
Example 2-124BA12543BBB
Example 2-125BAA13867BAA
Example 2-126AC11336BAC
Example 2-127AC12337BAA
Example 2-128AB12743BAA
Example 2-129AB12745AAA
Example 2-130AB12838BAA
Example 2-131AB12735BAA
Example 2-132AC12840BAA
Example 2-133AB12137BAA
Example 2-134BC13039BAA
Example 2-135BC12138AAB
Example 2-136BD12038AAB
Example 2-137BC11447AAB
Example 2-138CD11443AAB
Example 2-139AA13338BAA
Example 2-140AB13536BAA
Example 2-141AA12746BAA
Example 2-142BB12642BAA
Example 2-143AA14252BAA
Example 2-144AB10927ABB
Example 2-145BA12344BBB
Example 2-146BAA13568BAA
Example 2-147AB9721ACC
Example 2-148BA10932ACC
Example 2-149CAA12236BAC
Example 2-150AC12738BAA
TABLE 24 — Test results
CoatingElectrophotographic photosensitive member
liquidElectricalResponseLong-term
StorageFogcharacteristicsin rapidstoragePhotomemory
Example No.stabilityreductionSensitivityafter repeated userecordingstabilityprevention
Example 2-151AB12840BAA
Example 2-152AB12339AAA
Example 2-153AB12246BAA
Example 2-154AC12536BAA
Example 2-155AB12538BAA
Example 2-156BC12945BAA
Example 2-157BC11446BAB
Example 2-158BD11140BAB
Example 2-159BC11245BAB
Example 2-160CD11642BAB
Example 2-161AA12943BAA
Example 2-162AB13346BAA
Example 2-163AA13039BAA
Example 2-164BB13339BAA
Example 2-165AA13755BAA
Example 2-166AB10732ABB
Example 2-167BA12138BBB
Example 2-168BAA13959BAA
Example 2-169AC12844BAA
Example 2-170AB14374BAA
Example 2-171AC10638BAC
Example 2-172AC12337BAA
Example 2-173AB13342BAA
Example 2-174AB12244BAA
Example 2-175AC10944BAA
Example 2-176AD10741BAA
Example 2-177AC11138BAA
Example 2-178AC10940BAA
Example 2-179AC10638BAB
Example 2-180AD10941BAB
Example 2-181AC11045BAB
Example 2-182BD11036BAB
Example 2-183AB11140CAB
Example 2-184AC10636CAB
Example 2-185AB11337CAB
Example 2-186AB10736CAB
Example 2-187AC10847CAB
Example 2-188AC11236BAA
Example 2-189AC11445CAB
Example 2-190AB12539AAA
Example 2-191AB12545AAA
Example 2-192AC12747AAA
Example 2-193AB12745AAA
Example 2-194AC13944AAA
Example 2-195AD13345AAA
Example 2-196AC13838AAA
Example 2-197AB13736AAA
Example 2-198AB13845BAA
Example 2-199AB14337BAA
Example 2-200AB13643CAB
TABLE 25 — Test results
CoatingElectrophotographic photosensitive member
liquidElectricalResponseLong-term
StorageFogcharacteristicsin rapidstoragePhotomemory
Example No.stabilityreductionSensitivityafter repeated userecordingstabilityprevention
Example 2-201AB13841BAA
Example 2-202AB15240AAA
Example 2-203AC15536AAA
Example 2-204AB15135AAA
Example 2-205AC14836AAA
Example 2-206AD15041AAA
Example 2-207AC14939AAA
Example 2-208AB17241CAB
Example 2-209AC12230ABA
Example 2-210AD12027ABA
Example 2-211AC12628ABA
Example 2-212AD12130ABA
Example 2-213AD12631ABA
Example 2-214AD12629ABA
Example 2-215AC14230BBA
Example 2-216AC12927ABA
Example 2-217AD12826ABA
Example 2-218AC12826ABA
Example 2-219AD12530ABA
Example 2-220AD12427ABA
Example 2-221AD12130ABA
Example 2-222AC13530BBA
Example 2-223AC12633ABA
Example 2-224AD12227ABA
Example 2-225AC12231ABA
Example 2-226AD12128ABA
Example 2-227AD12929ABA
Example 2-228AD12625ABA
Example 2-229AC13533BBB
Example 2-230AC12838BAA
Example 2-231AD12836BAA
Example 2-232AC12247BAA
Example 2-233AD13036BAA
Example 2-234AE13937BAA
Example 2-235AD13442BAA
Example 2-236AC12047CAA
Example 2-237AD13546CAA
Example 2-238AD13741CAA
Example 2-239AC15935AAA
Example 2-240AC15841AAA
Example 2-241AD15936AAA
Example 2-242AC15038AAA
Example 2-243AD18742AAA
Example 2-244AD18738AAA
Example 2-245AD18146AAA
Example 2-246AC15645AAA
Example 2-247AC15938BAA
Example 2-248AC15144AAA
Example 2-249AC15237AAA
Example 2-250AC15944BAA
TABLE 26 — Test results
CoatingElectrophotographic photosensitive member
liquidElectricalResponseLong-term
StorageFogcharacteristicsin rapidstoragePhotomemory
Example No.stabilityreductionSensitivityafter repeated userecordingstabilityprevention
Example 2-251AC18436AAA
Example 2-252AD18746AAA
Example 2-253AC18637AAA
Example 2-254BD19739AAA
Example 2-255BD18943AAA
Example 2-256BD19038AAA
Example 2-257AC18943AAA
Example 2-258AD15930ABA
Example 2-259AD15827ABA
Example 2-260AD15231ABA
Example 2-261AD17326ABA
Example 2-262AE17532ABA
Example 2-263AD17526ABA
Example 2-264AD15026ABA
Example 2-265AD15430ABA
Example 2-266AD15028ABA
Example 2-267AD15932ABA
Example 2-268AD17533ABA
Example 2-269AE17332ABA
Example 2-270AD17832ABA
Example 2-271AD15027ABA
Example 2-272AD16032ABA
Example 2-273AD15626ABA
Example 2-274AD15530ABA
Example 2-275AD17227ABA
Example 2-276AE16933ABA
Example 2-277AD17126ABA
Example 2-278AD15731ABA
Example 2-279AD16045BAA
Example 2-280AE15244BAA
Example 2-281AD15042BAA
Example 2-282AE18245BAA
Example 2-283AE18237BAA
Example 2-284AE18442BAA
Example 2-285AD15145CAA
Example 2-286AD15637BAA
Example 2-287AD15639CAA
Example 2-288AAA9537AAA
Example 2-291AAA10541AAA
ComparativeD——————
Example 2-1
ComparativeD——————
Example 2-2
ComparativeD——————
Example 2-3
ComparativeD——————
Example 2-4
ComparativeAF17539DAE
Example 2-5
ComparativeCAA220126—A—
Example 2-6
ComparativeAF17343CAB
Example 2-7
ComparativeD——————
Example 2-8

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Classifications

4 codes
IPC · International Patent Classification
Section G — Physics
  • G03G5/047
  • G03G5/147
  • G03G5/00
  • G03G5/05

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