Claims
- 1. A photoconductive imaging member comprised of a hole blocking layer, a photogenerating layer, a charge transport layer, and thereover an overcoat layer comprised of a polymer with a low dielectric constant and charge transport molecules.
- 2. An imaging member in accordance with claim 1 wherein the weight ratio of the polymer and charge transport molecules is from about 30/70 to about 80/20.
- 3. An imaging member in accordance with claim 1 wherein said low is equal to or less than about 2.5.
- 4. An imaging member in accordance with claim 1 wherein said low is from about 1 to about 2.
- 5. An imaging member in accordance with claim 1 wherein said low is 2.
- 6. An imaging member in accordance with claim 1 Wherein said polymer is a poly(cyclo olefin).
- 7. An imaging member in accordance with claim 1 wherein said polymer is a poly(phenylene ether).
- 8. An imaging member in accordance with claim 1 wherein said polymer is a poly(cyclohexylenedimethylene terephthalate).
- 9. An imaging member in accordance with claim 1 wherein said polymer is the poly(cyclo olefin) polymer of a polydicyclopentadiene.
- 10. An imaging member in accordance with claim 1 wherein said polymer is the poly(phenylene ether) polymer of a poly-2,6-dimethyl-1,4-phenylene ether.
- 11. An imaging member in accordance with claim 1 wherein said polymer is a fluorinated ethylene propylene polymer.
- 12. An imaging member in accordance with claim 1 wherein said polymer is a poly[imino(1-oxododecamethylene)].
- 13. An imaging member in accordance with claim 1 wherein said polymer is a polystyrene.
- 14. An imaging member in accordance with claim 1 wherein said polymer is a polypropylene.
- 15. An imaging member in accordance with claim 1 wherein said charge transport molecules are selected from the group consisting of low dipole moment arylamine molecules wherein said low is equal to or less than about 0 to about 3D.
- 16. An imaging member in accordance with claim 1 wherein said charge transport molecules are comprised of bis(3,4-dimethylphenyl)-4-n-butylphenyl amine.
- 17. An imaging member in accordance with claim 1 wherein said charge transport molecules are comprised of bis(3,4-dimethylphenyl)-4-sec-butylphenyl amine.
- 18. An imaging member in accordance with claim 1 wherein said charge transport molecules are comprised of bis(3,4-dimethylphenyl)-4-t-butylphenyl amine.
- 19. An imaging member in accordance with claim 1 wherein said charge transport molecules are comprised of bis(4-t-butylphenyl)-3,4-dimethylphenyl amine.
- 20. An imaging member in accordance with claim 1 wherein said charge transport molecules are comprised of 1,1-bis(di-4-tolylaminophenyl)-4-tert-butylcyclohexane.
- 21. An imaging member in accordance with claim 1 wherein said polymer possesses a glass transition temperature of from about 80° C. to about 260° C.
- 22. An imaging member in accordance with claim 1 wherein said polymer possesses a glass transition temperature of from about 160° C. to about 190° C.
- 23. An imaging member in accordance with claim 1 wherein said hole blocking layer is comprised of a mixture of a metal oxide and a phenolic resin.
- 24. An imaging member in accordance with claim 23 wherein said metal oxide is a titanium oxide.
- 25. An imaging member in accordance with claim 23 wherein said phenolic resin is selected from the group consisting of a formaldehyde polymer generated with phenol, p-tert-butylphenol and cresol; a formaldehyde polymer generated with ammonia, cresol and phenol; a formaldehyde polymer generated with 4,4′-(1-methylethylidene)bisphenol; a formaldehyde polymer generated with cresol and phenol; and a formaldehyde polymer generated with phenol and p-tert-butylphenol.
- 26. An imaging member in accordance with claim 1 wherein said hole blocking layer is of a thickness of about 0.01 to about 30 microns.
- 27. An imaging member in accordance with claim 1 wherein said hole blocking layer is of a thickness of from about 0.1 to about 8 microns.
- 28. An imaging member in accordance with claim 1 and further containing an adhesive layer.
- 29. An imaging member in accordance with claim 28 wherein the adhesive layer is comprised of a polyester with an Mw of about 45,000 to about 75,000, and an Mn of from about 30,000 about 40,000.
- 30. An imaging member in accordance with claim 1 further containing a supporting substrate comprised of a conductive metal substrate of aluminum, aluminized polyethylene terephthalate or titanized polyethylene terephthalate.
- 31. An imaging member in accordance with claim 1 wherein said photogenerator layer is of a thickness of from about 0.05 to about 10 microns, and wherein said transport layer is of a thickness of from about 10 to about 50 microns.
- 32. An imaging member in accordance with claim 1 wherein the photogenerating layer is comprised of a photogenerating pigment or photogenerating pigments dispersed in a resinous binder, and wherein said pigment or pigments are present in an amount of from about 5 percent by weight to about 95 percent by weight, and wherein the resinous binder is selected from the group comprised of vinyl chloride/vinyl acetate copolymers, polyesters, polyvinyl butyrals, polycarbonates, polystyrene-b-polyvinyl pyridine, and polyvinyl formals.
- 33. An imaging member in accordance with claim 1 wherein the charge transport layer comprises aryl amines, and which aryl amines are of the formula
- 34. An imaging member in accordance with claim 33 wherein alkyl contains from about 1 to about 10 carbon atoms.
- 35. An imaging member in accordance with claim 33 wherein the aryl amine is N,N′-diphenyl-N,N-bis(3-methyl phenyl)-1,1′-biphenyl-4,4′-diamine.
- 36. An imaging member in accordance with claim 1 wherein the photogenerating layer is comprised of metal phthalocyanines, or metal free phthalocyanines.
- 37. An imaging member in accordance with claim 1 wherein the photogenerating layer is comprised of titanyl phthalocyanines, perylenes, or hydroxygallium phthalocyanines.
- 38. An imaging member in accordance with claim 1 wherein the photogenerating layer is comprised of Type V hydroxygallium phthalocyanine.
- 39. A method of imaging which comprises generating an electrostatic latent image on the imaging member of claim 1, developing the latent image, and transferring the developed electrostatic image to a suitable substrate.
- 40. An imaging member in accordance with claim 1 wherein said polymer overcoat layer is of a thickness of from about 0.1 to about 25 microns.
- 41. An imaging member in accordance with claim 1 wherein said polymer overcoating layer is of a thickness of from about 1 to about 20 microns.
- 42. An imaging member in accordance with claim 1 wherein said polymer overcoating layer is of a thickness of from about 5 to about 15 microns.
- 43. An imaging member in accordance with claim 1 wherein the weight ratio of the polymer and charge transport molecules is from about 60/40 to about 75/25.
- 44. An imaging member in accordance with claim 1 wherein said charge transport molecules in the polymer overcoat layer are comprised of aryl amines of the formula
- 45. An imaging member in accordance with claim 1 wherein said member comprises in sequence said photogenerating layer, said charge transport layer and said polymer overcoating layer, and optionally further containing a hole blocking layer in contact with a supporting substrate and an adhesive layer in contact with the hole blocking layer.
- 46. A member comprised of a photogenerating layer, a charge transport layer, and thereover a layer comprised of a polymer with a low dielectric constant and a charge transport component.
- 47. A member comprised of a supporting substrate, a photogenerating layer, a charge transport layer, and in contact with said charge transport layer a polymer and a charge transport component, and wherein said polymer possesses a suitable dielectric constant.
- 48. A member in accordance with claim 47 wherein said charge transport is comprised of hole transport molecules; said charge transport component is comprised of hole transport molecules, and said charge transport layer is situated between said photogenerating layer and said polymer containing layer.
CROSS REFERENCES
[0001] There is illustrated in copending U.S. Serial No. (not yet assigned—D/A2262), entitled Photoconductive Imaging Members, filed concurrently herewith, the disclosure of which is totally incorporated herein by reference, a photoconductive imaging member comprised of a supporting substrate, a hole blocking layer thereover, a crosslinked photogenerating layer and a charge transport layer, and wherein the photogenerating layer is comprised of a photogenerating component and a vinyl chloride, allyl glycidyl ether, hydroxy containing polymer.
[0002] There is illustrated in copending U.S. Ser. No. (not yet assigned—D/A2151), the disclosure of which is totally incorporated herein by reference, filed concurrently herewith, entitled Photoconductive Imaging Members, a photoconductive imaging member comprised of a hole blocking layer, a photogenerating layer, and a charge transport layer, and wherein the hole blocking layer is comprised of a metal oxide; and a mixture of a phenolic compound and a phenolic resin wherein the phenolic compound contains at least two phenolic groups.
[0003] There is illustrated in copending U.S. Serial No. (not yet assigned—D/A2270), the disclosure of which is totally incorporated herein by reference, filed concurrently herewith, entitled Photoconductive Imaging Members, a photoconductive imaging member comprised of an optional supporting substrate, a photogenerating layer, and a charge transport layer, and wherein said charge transport layer is comprised of a charge transport component and a polysiloxane.
[0004] Illustrated in U.S. Pat. No. 6,015,645, the disclosure of which is totally incorporated herein by reference, is a photoconductive imaging member comprised of a supporting substrate, a hole blocking layer, an optional adhesive layer, a photogenerator layer, and a charge transport layer, and wherein the blocking layer is comprised, for example, of a polyhaloalkylstyrene.
[0005] Illustrated in U.S. Pat. No. 6,287,737, the disclosure of which is totally incorporated herein by reference, is a photoconductive imaging member comprised of a supporting substrate, a hole blocking layer thereover, a photogenerating layer and a charge transport layer, and wherein the hole blocking layer is comprised of a crosslinked polymer derived from the reaction of a silyl-functionalized hydroxyalkyl polymer of Formula (I) with an organosilane of Formula (II) and water
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[0006] wherein A, B, D, and F represent the segments of the polymer backbone; E is an electron transporting moiety; X is selected from the group consisting of halide, cyano, alkoxy, acyloxy, and aryloxy; a, b, c, and d are mole fractions of the repeating monomer units such that the sum of a+b+c+d is equal to 1; R is alkyl, substituted alkyl, aryl, or substituted aryl; and R1, R2, and R3 are independently selected from the group consisting of alkyl, aryl, alkoxy, aryloxy, acyloxy, halogen, cyano, and amino, subject to the provision that two of R1, R2, and R3 are independently selected from the group consisting of alkoxy, aryloxy, acyloxy, and halide.
[0007] Illustrated in U.S. Pat. No. 5,473,064, the disclosure of which is totally incorporated herein by reference, is a process for the preparation of hydroxygallium phthalocyanine Type V, essentially free of chlorine, whereby a pigment precursor Type I chlorogallium phthalocyanine is prepared by reaction of gallium chloride in a solvent, such as N-methylpyrrolidone, present in an amount of from about 10 parts to about 100 parts, and preferably about 19 parts with 1,3-diiminoisoindolene (DI3) in an amount of from about 1 part to about 10 parts, and preferably about 4 parts DI3, for each part of gallium chloride that is reacted; hydrolyzing the pigment precursor chlorogallium phthalocyanine Type I by standard methods, for example acid pasting, whereby the pigment precursor is dissolved in concentrated sulfuric acid and then reprecipitated in a solvent, such as water, or a dilute ammonia solution, for example from about 10 to about 15 percent; and subsequently treating the resulting hydrolyzed pigment hydroxygallium phthalocyanine Type I with a solvent, such as N,N-dimethylformamide, present in an amount of from about 1 volume part to about 50 volume parts, and preferably about 15 volume parts for each weight part of pigment hydroxygallium phthalocyanine that is used by, for example, ballmilling the Type I hydroxygallium phthalocyanine pigment in the presence of spherical glass beads, approximately 1 millimeter to 5 millimeters in diameter, at room temperature, about 25° C., for a period of from about 12 hours to about 1 week, and preferably about 24 hours.
[0008] Illustrated in U.S. Pat. No. 5,521,043, the disclosure of which is totally incorporated herein by reference, are photoconductive imaging members comprised of a supporting substrate, a photogenerating layer of hydroxygallium phthalocyanine, a charge transport layer, a photogenerating layer of BZP perylene, which is preferably a mixture of bisbenzimidazo(2,1-a-1′,2′-b)anthra(2,1,9-def:6,5,10-d′e′f′)diisoquinoline-6,11-dione and bisbenzimidazo(2,1-a:2′,1′-a)anthra(2,1,9-def:6,5,10-d′e′f′)diisoquinoline-10,21-dione, reference U.S. Pat. No. 4,587,189, the disclosure of which is totally incorporated herein by reference; and as a top layer a second charge transport layer.