Claims
- 1. An image forming apparatus comprising;
- an electrostatic latent image bearing member having an organic photoconductive layer to bear thereon an electrostatic latent image; said electrostatic latent image bearing member containing fluorine-containing fine resin particles in its surface;
- a contact charging member being in pressure-contact with the surface of said electrostatic latent image bearing member to electrostatically charge said electrostatic latent image bearing member upon application of a bias voltage;
- a latent image forming means to form an electrostatic latent image on the electrostatically charged electrostatic latent image bearing member;
- a developing means to develop the electrostatic latent image formed on said electrostatic latent image bearing member; said developing means holding a magnetic toner; said magnetic toner comprising magnetic toner particles containing at least a binder resin and a magnetic material;
- wherein said binder resin contains a polymer synthesized from vinyl monomers in the presence of an aromatic organic solvent in an amount of not less than 50 parts by weight based on 100 parts by weight of the binder resin, and said magnetic toner particles contain said aromatic organic solvent in a quantity of not more than 500 ppm based on the weight of the magnetic toner particles;
- a contact transfer member being in contact with the surface of the electrostatic latent image bearing member interposing a transfer medium between them to transfer the toner image formed by the developing means to said transfer medium; and
- a fixing means to fix said toner image on said transfer medium.
- 2. An image forming apparatus according to claim 1, wherein said aromatic organic solvent is selected from the group consisting of benzene, toluene, xylene, cyclohexane and tetrahydrofuran.
- 3. An image forming apparatus according to claim 1, wherein the polymer is synthesized from vinyl monomers in the presence of an aromatic organic solvent by solution polymerization.
- 4. An image forming apparatus according to claim 1, wherein said binder resin has a low molecular weight component having a peak molecular weight (Mp) from 4,000 to 30,000 in GPC chromatogram and a high molecular weight polymer having a peak molecular weight (Mp) from 200,000 to 1,000,000 in GPC chromatogram.
- 5. An image forming apparatus according to claim 4, wherein said binder resin is prepared by melt-kneading a low molecular weight polymer and a high molecular weight polymer.
- 6. An image forming apparatus according to claim 5, wherein said low molecular weight polymer has a peak molecular weight (Mp) from 4,000 to 30,000 in GPC chromatogram and said high molecular weight polymer has a peak molecular weight (Mp) from 200,000 to 1,000,000 in GPC chromatogram.
- 7. An image forming apparatus according to claim 5, wherein said low molecular weight polymer has a peak molecular weight (Mp) from 7,000 to 20,000 in GPC chromatogram and said high molecular weight polymer has a peak molecular weight (Mp) from 300,000 to 700,000 in GPC chromatogram.
- 8. An image forming apparatus according to claim 4, wherein said low molecular weight component comprises a polymer synthesized by solution polymerization and said high molecular weight component comprises a polymer synthesized by suspension polymerization.
- 9. An image forming apparatus according to claim 4, wherein said low molecular weight component comprises a polymer synthesized by polymerization using a monofunctional radical initiator and said high molecular weight component comprises a polymer synthesized by polymerization using a polyfunctional radical initiator.
- 10. An image forming apparatus according to claim 1, wherein said magnetic toner has a glass transition point (Tg) from 45.degree. C. to 80.degree. C.
- 11. An image forming apparatus according to claim 1, wherein said magnetic toner has a glass transition point (Tg) from 50.degree. C. to 70.degree. C.
- 12. An image forming apparatus according to claim 1, wherein said magnetic toner particles contain a polyolefin.
- 13. An image forming apparatus according to claim 12, wherein said polyolefin comprises a homopolymer of an .alpha.-olefin, a copolymer of two or more .alpha.-olefins or an oxide of an .alpha.-olefin.
- 14. An image forming apparatus according to claim 13, wherein said polyolefin comprises a vinyl type graft-modified polyolefin.
- 15. An image forming apparatus according to claim 14, wherein said vinyl type graft-modified polyolefin is graft-modified with an aliphatic vinyl monomer or aromatic vinyl monomer.
- 16. An image forming apparatus according to claim 12, wherein said polyolefin has a weight average molecular weight from 2,000 to 30,000 as measured by GPC.
- 17. An image forming apparatus according to claim 12, wherein said polyolefin has a weight average molecular weight from 5,000 to 18,000 as measured by GPC.
- 18. An image forming apparatus according to claim 12, wherein said magnetic toner particles contain the polyolefin in an amount from 0.1 part by weight to 20 parts by weight based on 100 parts by weight of the binder resin.
- 19. An image forming apparatus according to claim 12, wherein said magnetic toner particles contain the polyolefin in an amount from 0.1 part by weight to 10 parts by weight based on 100 parts by weight of the binder resin.
- 20. An image forming apparatus according to claim 1, wherein said polymer used in said magnetic toner particles is prepared by polymerizing vinyl monomers in the presence of the aromatic organic solvent; drying the resulting polymer to remove said solvent under normal pressure at a temperature of 30.degree. C. to 50.degree. C. for 5 hours to 48 hours, and thereafter, drying the resulting polymer to remove said solvent under absolute pressure of from 10 mmHg to 500 mmHg at a temperature of 30.degree. C. to 50.degree. C. for 5 hours to 48 hours.
- 21. An image forming apparatus according to claim 1, wherein said polymer used in said magnetic toner particles is prepared by polymerizing vinyl monomers in the presence of the aromatic organic solvent; drying the resulting polymer to remove said solvent under normal pressure at a temperature of 35.degree. C. to 45.degree. C. for 8 hours to 36 hours, and thereafter, drying the resulting polymer to remove said solvent under absolute pressure of from 50 mmHg to 400 mmHg at a temperature of 35.degree. C. to 45.degree. C. for 8 hours to 36 hours.
- 22. An image forming apparatus according to claim 1, wherein said magnetic toner contains a fine silica powder in an amount from 0.01 part by weight to 8 parts by weight based on 100 parts by weight of the magnetic toner particles.
- 23. An image forming apparatus according to claim 1, wherein said magnetic toner contains a fine silica powder in an amount of from 0.01 part by weight to 5 parts by weight based on 100 parts by weight of the magnetic toner particles.
- 24. An image forming apparatus according to claim 31, wherein said fluorine-containing fine resin particles comprise a polymer selected from the group consisting of polytetrafluoroethylene, polychlorotrifluoroethylene, polyvinylidene fluoride, polydichlorodifluoroethylene, a tetrafluoroethylene/perfluoroalkyl/vinyl ether copolymer, a tetrafluoroethylene/hexafluoropropylene copolymer, a tetrafluoroethylene/ethylene copolymer and a tetrafluoroethylene/hexafluoropropylene/perfluoroalkyl vinyl ether copolymer.
- 25. An image forming apparatus according to claim 1, wherein said fluorine-containing fine resin particles have a weight average molecular weight from 3,000 to 5,000,000.
- 26. An image forming apparatus according to claim 1, wherein said electrostatic latent image bearing member has a surface comprising a charge transport layer formed on a charge generation layer.
- 27. An image forming apparatus according to claim 26, wherein said fluorine-containing fine resin particles are contained in said charge transport layer in an amount from 5% by weight to 30% by weight based on the total weight of the charge transport layer.
- 28. An image forming apparatus according to claim 26, wherein said fluorine-containing fine resin particles are contained in said charge transport layer in an amount from 10% by weight to 25% by weight based on the total weight of the charge transport layer.
- 29. An image forming apparatus according to claim 1, wherein said electrostatic latent image bearing member has a surface comprising a protective layer formed on an organic photoconductive layer.
- 30. An image forming apparatus according to claim 29, wherein said fluorine-containing fine resin particles are contained in said protective layer in an amount from 5% by weight to 40% by weight based on the total weight of the protective layer.
- 31. An image forming apparatus according to claim 29, wherein said fluorine-containing fine resin particles are contained in said protective layer in an amount from 10% by weight to 40% by weight based on the total weight of the protective layer.
- 32. An image forming apparatus according to claim 1, which further comprises a cleaning means for removing contaminants on the surface of said electrostatic latent image bearing member, said cleaning means being in contact with the surface of said image bearing member.
- 33. An apparatus unit detachable from the main body of an image forming apparatus, comprising at least:
- an electrostatic latent image bearing member having an organic photoconductive layer to bear thereon an electrostatic latent image; said electrostatic latent image bearing member containing fluorine-containing fine resin particles in its surface;
- a contact charging member being in pressure-contact with the surface of said electrostatic latent image bearing member to electrostatically charge said electrostatic latent image bearing member upon application of a bias voltage; and
- a developing means to develop the electrostatic latent image formed on said electrostatic latent image bearing member; said developing means holding a magnetic toner said magnetic toner comprising magnetic toner particles containing at least a binder resin and a magnetic material wherein said binder resin contains a polymer synthesized from vinyl monomers in the presence of an aromatic organic solvent in an amount of not less than 50 parts by weight based on 100 parts by weight of the binder resin, and said magnetic toner particles contain said aromatic organic solvent in a quantity of not more than 500 ppm based on the weight of the magnetic toner particles.
- 34. An apparatus unit according to claim 33, wherein said aromatic organic solvent is selected from the group consisting of benzene, toluene, xylene, cyclohexane and tetrahydrofuran.
- 35. An apparatus unit according to claim 33, wherein the polymer is synthesized from vinyl monomers in the presence of an aromatic organic solvent by solution polymerization.
- 36. An apparatus unit according to claim 33, wherein said binder resin has a low molecular weight component having a peak molecular weight (Mp) from 4,000 to 30,000 in GPC chromatogram and a high molecular weight polymer having peak molecular weight (Mp) from 200,000 to 1,000,000 in GPC chromatogram.
- 37. An apparatus unit according to claim 36, wherein said binder resin is prepared by melt-kneading a low molecular weight polymer and high molecular weight polymer.
- 38. An apparatus unit according to claim 37, wherein said low molecular weight polymer has a peak molecular weight (Mp) from 4,000 to 30,000 in GPC chromatogram and said high molecular weight polymer has a peak molecular weight (Mp) from 200,000 to 1,000,000 in GPC chromatogram.
- 39. An apparatus unit according to claim 37, wherein said low molecular weight polymer has a peak molecular weight (Mp) from 7,000 to 20,000 in GPC chromatogram and said high molecular weight polymer has a peak molecular weight (Mp) from 300,000 to 700,000 in GPC chromatogram.
- 40. An apparatus unit according to claim 36, wherein said low molecular weight component comprises a polymer synthesized by solution polymerization and said high molecular weight component comprises a polymer synthesized by suspension polymerization.
- 41. An apparatus unit according to claim 36, wherein said low molecular weight component comprises a polymer synthesized by polymerization using a monofunctional radical initiator and said high molecular weight component comprises a polymer synthesized by polymerization using a polyfunctional radical initiator.
- 42. An apparatus unit according to claim 33, wherein said magnetic toner has a glass transition point (Tg) from 45.degree. C. to 80.degree. C.
- 43. An apparatus unit according to claim 33, wherein said magnetic toner has a glass transition point (Tg) from 50.degree. C. to 70.degree. C.
- 44. An apparatus unit according to claim 33, wherein said magnetic toner contains a polyolefin.
- 45. An apparatus unit according to claim 44, wherein said polyolefin comprises a homopolymer of an .alpha.-olefin, a copolymer of two or more .alpha.-olefins or an oxide of an .alpha.-olefin.
- 46. An apparatus unit according to claim 45, wherein said polyolefin comprises a vinyl type graft-modified polyolefin.
- 47. An apparatus unit according to claim 46, wherein said vinyl type graft-modified polyolefin is graft-modified with an aliphatic vinyl monomer or aromatic vinyl monomer.
- 48. An apparatus unit according to claim 44, wherein said polyolefin has a weight average molecular weight from 2,000 to 30,000 as measured by GPC.
- 49. An image forming apparatus according to claim 44, wherein said polyolefin has a weight average molecular weight from 5,000 to 18,000 as measured by GPC.
- 50. An apparatus unit according to claim 44, wherein said magnetic toner contains the polyolefin in an amount from 0.1 part by weight to 20 parts by weight based on 100 parts by weight of the binder resin.
- 51. An apparatus unit according to claim 44, wherein said magnetic toner contains the polyolefin in an amount from 0.1 part by weight to 10 parts by weight based on 100 parts by weight of the binder resin.
- 52. An apparatus unit according to claim 33, wherein said polymer used in said magnetic toner particles is prepared by polymerizing vinyl monomers in the presence of the aromatic organic solvent; drying the resulting polymer to remove said solvent under normal pressure at a temperature of 30.degree. C. to 50.degree. C. for 5 hours to 48 hours, and thereafter, drying the resulting polymer to remove said solvent under absolute pressure of from 10 mmHg to 500 mmHg at a temperature of 30.degree. C. to 50.degree. C. for 5 hours to 48 hours.
- 53. An apparatus unit according to claim 33, wherein said polymer used in said magnetic toner particles is prepared by polymerizing vinyl monomers in the presence of the aromatic organic solvent; drying the resulting polymer to remove said solvent under normal pressure at a temperature of 35.degree. C. to 45.degree. C. for 8 hours to 36 hours, and thereafter, drying the resulting polymer to remove said solvent under absolute pressure of from 50 mmHg to 400 mmHg at a temperature of 35.degree. C. to 45.degree. C. for 8 hours to 36 hours.
- 54. An apparatus unit according to claim 33, wherein said magnetic toner contains a fine silica powder in an amount of from 0.01 part by weight to 8 parts by weight based on 100 parts by weight of the magnetic toner particles.
- 55. An apparatus unit according to claim 33, wherein said magnetic toner contains a fine silica powder in an amount of from 0.01 part by weight to 5 parts by weight based on 100 parts by weight of the magnetic toner particles.
- 56. An apparatus unit according to claim 33, wherein said fluorine-containing fine resin particles comprise a polymer selected from the group consisting of polytetrafluoroethylene, polychlorotrifluoroethylene, polyvinylidene fluoride, polydichlorodifluoroethylene, a tetrafluoro-ethylene/perfluoroalkyl/vinyl ether copolymer, a tetrafluoroethylene/hexafluoropropylene copolymer, a tetrafluoroethylene/ethylene copolymer and a tetrafluoroethylene/hexafluoropropylene/perfluoroalkyl vinyl ether copolymer.
- 57. An apparatus unit according to claim 33, wherein said fluorine-containing fine resin particles have a weight average molecular weight from 3,000 to 5,000,000.
- 58. An apparatus unit according to claim 1, wherein said electrostatic latent image bearing member has a surface comprising a charge transport layer formed on a charge generation layer.
- 59. An apparatus unit according to claim 58, wherein said fluorine-containing fine resin particles are contained in said charge transport layer in an amount from 5% by weight to 30% by weight based on the total weight of the charge transport layer.
- 60. An apparatus unit according to claim 58, wherein said fluorine-containing fine resin particles are contained in said charge transport layer in an amount from 10% by weight to 25% by weight based on the total weight of the charge transport layer.
- 61. An apparatus unit according to claim 33, wherein said electrostatic latent image bearing member has a surface comprising a protective layer formed on an organic photoconductive layer.
- 62. An apparatus unit according to claim 61, wherein said fluorine-containing fine resin particles are contained in said protective layer in an amount from 5% by weight to 40% by weight based on the total weight of the protective layer.
- 63. An apparatus unit according to claim 61, wherein said fluorine-containing fine resin particles are contained in said protective layer in an amount from 10% by weight to 40% by weight based on the total weight of the protective layer.
- 64. An apparatus unit according to claim 33, wherein in addition to said electrostatic latent image bearing member, said contact charging member and said developing means, a cleaning means for removing contaminants on the surface of said electrostatic latent image bearing member is integrated in said apparatus unit which is detachable from the main body of said image forming apparatus, said cleaning means being in contact with the surface of said latent image bearing member.
- 65. An image forming apparatus comprising:
- an electrostatic image bearing member having an organic photoconductive layer to bear thereon an electrostatic latent image; said electrostatic latent image bearing member containing fluorine-containing fine resin particles in its surface;
- a contact charging member being in pressure-contact with the surface of said electrostatic latent image bearing member to electrostatically charge said electrostatic latent image bearing member upon application of a bias voltage;
- a latent image forming means to form an electrostatic latent image on the electrostatically charged electrostatic latent image bearing member;
- a developing means to develop the electrostatic latent image formed on said electrostatic latent image bearing member; said developing means holding a toner; said toner comprising toner particles containing at least a binder resin and a colorant;
- wherein said binder resin contains a polymer synthesized from vinyl monomers in the presence of an aromatic organic solvent, and said toner contains said aromatic organic solvent in a quantity of not more than 500 ppm based on the weight of the toner particles; and
- a cleaning means for removing contaminants on the surface of said electrostatic latent image bearing member, said cleaning means being in contact with the surface of said image bearing member.
- 66. An image forming apparatus according to claim 65, which further comprises a contact transfer member being in contact with the surface of the electrostatic latent image bearing member interposing a transfer medium between them to transfer the toner image formed by the developing means to said transfer medium.
- 67. An image forming apparatus according to claim 65, wherein said binder resin contains said polymer in an amount of not less than 50 parts by weight based on 100 parts by weight of the binder resin.
- 68. An image forming apparatus according to claim 65, wherein said aromatic organic solvent is selected from the group consisting of benzene, toluene, xylene, cyclohexane and tetrahydrofuran.
- 69. An image forming apparatus according to claim 65, wherein the polymer is synthesized from vinyl monomers in the presence of an aromatic organic solvent by solution polymerization.
- 70. An image forming apparatus according to claim 65, wherein said binder resin has a low molecular weight component having a peak molecular weight (Mp) from 4,000 to 30,000 in GPC chromatogram and a high molecular weight polymer having a peak molecular weight (Mp) from 200,000 to 1,000,000 in GPC chromatogram.
- 71. An image forming apparatus according to claim 70, wherein said binder resin is prepared by melt-kneading a low molecular weight polymer and a high molecular weight polymer.
- 72. An image forming apparatus according to claim 71, wherein said low molecular weight polymer has a peak molecular weight (Mp) from 4,000 to 30,000 in GPC chromatogram and said high molecular weight polymer has a peak molecular weight (Mp) from 200,000 to 1,000,000 in GPC chromatogram.
- 73. An image forming apparatus according to claim 71, wherein said low molecular weight polymer has a peak molecular weight (Mp) from 7,000 to 20,000 in GPC chromatogram and said high molecular weight polymer has a peak molecular weight (Mp) from 300,000 to 700,000 in GPC chromatogram.
- 74. An image forming apparatus according to claim 70, wherein said low molecular weight component comprises a polymer synthesized by solution polymerization and said high molecular weight component comprises a polymer synthesized by suspension polymerization.
- 75. An image forming apparatus according to claim 70, wherein said low molecular weight component comprises a polymer synthesized by polymerization using a monofunctional radical initiator and said high molecular weight component comprises a polymer synthesized by polymerization using a polyfunctional radical initiator.
- 76. An image forming apparatus according to claim 65, wherein said toner has a glass transition point (Tg) from 45.degree. C. to 80.degree. C.
- 77. An image forming apparatus according to claim 65, wherein said toner has a glass transition point (Tg) from 50.degree. C. to 70.degree. C.
- 78. An image forming apparatus according to claim 65, wherein said polymer used in said toner particles is prepared by polymerizing vinyl monomers in the presence of the aromatic organic solvent; drying the resulting polymer to remove said solvent under normal pressure at a temperature of 30.degree. C. to 50.degree. C. for 5 hours to 48 hours, and thereafter drying the resulting polymer to remove said solvent under absolute pressure from 10 mmHg to 500 mmHg at a temperature of 30.degree. C. to 50.degree. C. for 5 hours to 48 hours.
- 79. An image forming apparatus according to claim 65, wherein said polymer used in said toner particles is prepared by polymerizing vinyl monomers in the presence of the aromatic organic solvent; drying the resulting polymer to remove said solvent under normal pressure at a temperature of 35.degree. C. to 45.degree. C. for 8 hours to 36 hours, and thereafter, drying the resulting polymer to remove said solvent under absolute pressure of from 50 mmHg to 400 mmHg at a temperature of 35.degree. C. to 45.degree. C. for 8 hours to 36 hours.
- 80. An image forming apparatus according to claim 65, wherein said fluorine-containing fine resin particles comprise a polymer selected from the group consisting of polytetrafluoroethylene, polychlorotrifluoroethylene, polyvinylidene fluoride, polydichlorodifluoroethylene, a tetrafluoroethylene/perfluoroalkyl/vinyl ether copolymer, a tetrafluoroethylene/hexafluoropropylene copolymer, a tetrafluoroethylene/ethylene copolymer, and a tetrafluoroethylene/hexafluoropropylene/perfluoroalkyl vinyl ether copolymer.
- 81. An image forming apparatus according to claim 65, wherein said fluorine-containing fine resin particles have a weight average molecular weight from 3,000 to 5,000,000.
- 82. An image forming apparatus according to claim 65, wherein said electrostatic latent image bearing member has a surface comprising a charge transport layer formed on a charge generation layer.
- 83. An image forming apparatus according to claim 82, wherein said fluorine-containing fine resin particles are contained in said charge transport layer in an amount from 5% by weight to 30% by weight based on the total weight of the charge transport layer.
- 84. An image forming apparatus according to claim 82, wherein said fluorine-containing fine resin particles are contained in said charge transport layer in an amount from 10% by weight to 25% by weight based on the total weight of the charge transport layer.
- 85. An image forming apparatus according to claim 65, wherein said electrostatic latent image bearing member has a surface comprising a protective layer formed on an organic photoconductive layer.
- 86. An image forming apparatus according to claim 85, wherein said fluorine-containing fine resin particles are contained in said protective layer in an amount from 5% by weight to 40% by weight based on the total weight of the protective layer.
- 87. An image forming apparatus according to claim 85, wherein said fluorine-containing fine resin particles are contained in said protective layer in an amount from 10% by weight to 40% by weight based on the total weight of the protective layer.
- 88. An apparatus unit detachable from the main body of an image forming apparatus, comprising at least:
- an electrostatic latent image bearing member having an organic photoconductive layer to bear thereon an electrostatic latent image; said electrostatic latent image bearing member containing fluorine-containing fine resin particles in its surface;
- a contact charging member being in pressure-contact with the surface of said electrostatic latent image bearing member to electrostatically charge said electrostatic latent image bearing member upon application of a bias voltage;
- a developing means to develop the electrostatic latent image formed on said electrostatic latent image bearing member; said developing means holding a toner; said toner comprising toner containing at least a binder resin and a colorant wherein said binder resin contains a polymer synthesized from vinyl monomers in the presence of an aromatic organic solvent, and said toner particles contains said aromatic organic solvent in a quantity of not more than 500 ppm based on the weight of the toner particles; and
- a cleaning means for removing contaminants on the surface of said electrostatic latent image bearing member, said cleaning means being in contact with the surface of said image bearing member.
- 89. An apparatus unit according to claim 88, wherein said binder resin contains said polymer in an amount of not less than 50 parts by weight based on 100 parts by weight of the binder resin.
- 90. An apparatus unit according to claim 88, wherein said aromatic organic solvent is selected from the group consisting of benzene, toluene, xylene, cyclohexane and tetrahydrofuran.
- 91. An apparatus unit according to claim 88, wherein the polymer is synthesized from vinyl monomers in the presence of an aromatic organic solvent by solution polymerization.
- 92. An apparatus unit according to claim 88, wherein said binder resin has a low molecular weight component having a peak molecular weight (Mp) from 4,000 to 30,000 in GPC chromatogram and a high molecular weight polymer having a peak molecular weight (Mp) from 200,000 to 1,000,000 in GPC chromatogram.
- 93. An apparatus unit according to claim 92, wherein said binder resin is prepared by melt-kneading a low molecular weight polymer and a high molecular weight polymer.
- 94. The apparatus unit according to claim 93, wherein said low molecular weight polymer has a peak molecular weight (Mp) from 4,000 to 30,000 in GPC chromatogram and said high molecular weight polymer has a peak molecular weight (Mp) from 200,000 to 1,000,000 in GPC chromatogram.
- 95. An apparatus unit according to claim 93, wherein said low molecular weight polymer has a peak molecular weight (Mp) from 7,000 to 20,000 in GPC chromatogram and said high molecular weight polymer has a peak molecular weight (Mp) from 300,000 to 700,000 in GPC chromatogram.
- 96. An apparatus unit according to claim 92, wherein said low molecular weight component comprises a polymer synthesized by solution polymerization and said high molecular weight component comprises a polymer synthesized by suspension polymerization.
- 97. An apparatus unit according to claim 92, wherein said low molecular weight component comprises a polymer synthesized by polymerization using a monofunctional radical initiator and said high molecular weight component comprises a polymer synthesized by polymerization using a polyfunctional radical initiator.
- 98. An apparatus unit according to claim 88, wherein said toner has a glass transition point (Tg) from 45.degree. C. to 80.degree. C.
- 99. An apparatus unit according to claim 88, wherein said toner has a glass transition point (Tg) from 50.degree. C. to 70.degree. C.
- 100. An apparatus unit according to claim 88, wherein said polymer used in said toner particles is prepared by polymerizing vinyl monomers in the presence of the aromatic organic solvent; drying the resulting polymer to remove said solvent under normal pressure at a temperature of 30.degree. C. to 50.degree. C. for 5 hours to 48 hours, and thereafter drying the resulting polymer to remove said solvent under absolute pressure from 10 mmHg to 500 mmHg at a temperature of 30.degree. C. to 50.degree. C. for 5 hours to 48 hours.
- 101. An apparatus unit according to claim 88, wherein said polymer used in said toner particles is prepared by polymerizing vinyl monomers in the presence of the aromatic organic solvent; drying the resulting polymer to remove said solvent under normal pressure at a temperature of 35.degree. C. to 45.degree. C. for 8 hours to 36 hours, and thereafter, drying the resulting polymer to remove said solvent under absolute pressure of from 50 mmHg to 400 mmHg at a temperature of 35.degree. C. to 45.degree. C. for 8 hours to 36 hours.
- 102. An apparatus unit according to claim 88, wherein said fluorine-containing fine resin particles comprise a polymer selected from the group consisting of polytetrafluoroethylene, polychlorotrifluoroethylene, polyvinylidene fluoride, polydichlorodifluoroethylene, a tetrafluoro-ethylene/perfluoroalkyl/vinyl ether copolymer, a tetrafluoroethylene/hexafluoropropylene copolymer, a tetrafluoroethylene/ethylene copolymer, and a tetrafluoroethylene/hexafluoropropylene/perfluoroalkyl vinyl ether copolymer.
- 103. An apparatus unit according to claim 88, wherein said fluorine-containing fine resin particles have a weight average molecular weight from 3,000 to 5,000,000.
- 104. An apparatus unit according to claim 88, wherein said electrostatic latent image bearing member has a surface comprising a charge transport layer formed on a charge generation layer.
- 105. An apparatus unit according to claim 104, wherein said fluorine-containing fine resin particles are contained in said charge transport layer in an amount from 5% by weight to 30% by weight based on the total weight of the charge transport layer.
- 106. An apparatus unit according to claim 104, wherein said fluorine-containing fine resin particles are contained in said charge transport layer in an amount from 10% by weight to 25% by weight based on the total weight of the charge transport layer.
- 107. An apparatus unit according to claim 88, wherein said electrostatic latent image bearing member has a surface comprising a protective layer formed on an organic photoconductive layer.
- 108. An apparatus unit according to claim 107, wherein said fluorine-containing fine resin particles are contained in said protective layer in an amount from 5% by weight to 40% by weight based on the total weight of the protective layer.
- 109. An apparatus unit according to claim 107, wherein said fluorine-containing fine resin particles are contained in said protective layer in an amount from 10% by weight to 40% by weight based on the total weight of the protective layer.
Priority Claims (1)
Number |
Date |
Country |
Kind |
4-184713 |
Jun 1992 |
JPX |
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Parent Case Info
This application is a continuation of application Ser. No. 08/077,878 filed Jun. 18, 1993, now abandoned.
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