Claims
- 1. An image forming method, which comprises forming an electrostatic latent image on a photosensitive drum; developing said latent image with a developer to form toner images, said developer comprising negatively chargeable toner particles and, hydrophobic, negatively chargeable silica fine powder,
- said silica fine powder being obtained by treating silica fine powder with a silane coupling agent represented by the following formula:
- R.sub.m SiY.sub.n or Y.sub.3 --Si--NH--Si--Y.sub.3
- wherein R represents alkoxy group or chlorine atom, Y represents alkyl group, m represents positive integer of 1 to 3 and n represents positive integer of 3 to 1, with proviso that m+n is 4,
- and treating further said treated silica fine powder with a silicone oil having the structure: ##STR15## wherein R represents alkyl group having 1 to 3 carbon atoms, R' represents alkyl group different form R having 1 to 10 carbon atoms, halogen-modified alkyl group having 1 to 10 carbon atoms, phenyl-modified alkyl group or phenyl group, R" represents alkyl group having 1 to 3 carbon atoms or alkoxy group having 1 to 3 carbon atoms (with proviso that R" represents a group which may be either the same as or different from R), and x and y each represent positive integer;
- electrostatically transferring the toner images formed to a transfer material; and cleaning the photosensitive drum after electrostatic transfer with a blade cleaning means.
- 2. An image forming method according to claim 1, wherein the electrostatic latent image is formed of positive charges.
- 3. An image forming method according to claim 1, wherein the electrostatic latent image is formed of negative charges and is developed by reversal developing with a negatively charged developer.
- 4. An image forming method according to claim 1, wherein the photosensitive drum has a surface hardness of 30 g or less.
- 5. An image forming method according to claim 4, wherein the photosensitive drum is provided with a photosensitive layer having an organic photoconductor.
- 6. An image forming method according to claim 1, wherein the electrostatic latent image is a digital latent image formed of 50 to 150 .mu.m picture elements.
- 7. An image forming method according to claim 6, wherein the digital latent image is developed by reversal developing with a negatively charged developer.
- 8. An image forming method according to claim 1, wherein the photosensitive drum has a drum diameter of 50 mm.phi. or less.
- 9. An image forming method according to claim 1, wherein the toner images on the photosensitive drum are electrostatically transferred at an effective transfer current of 1.times.10.sup.-7 to 10.times.10.sup.-7 (A/cm).
- 10. An image forming method according to claim 1, wherein the photosensitive drum after electrostatic transfer is subjected to blade cleaning with a rubber plate blade with a rubber hardness of 20 to 70.mu..
- 11. An image forming method according to claim 10, wherein the rubber plate blade is pressure contacted against the photosensitive drum with a penetration amount of 0.1 to 2 mm.
- 12. An image forming method according to claim 1, wherein the toner particles comprise 100 parts by weight of a binder resin and 10 to 200 parts by weight of a magnetic material.
- 13. An image forming method according to claim 12, wherein the toner particles contain 50 to 150 parts by weight of the magnetic material.
- 14. An image forming method according to claim 1, wherein the toner particles containing 0.1 to 10 parts by weight of a negatively chargeable charge controller per 100 parts by weight of the binder resin.
- 15. An image forming method according to claim 1, wherein the toner particles contain a metal complex compound of an aromatic hydroxycarboxylic acid having lipophilic group (A) and a metal complex salt type monoazo dye having free hydrophilic group (B), wherein compound (A) and compound (B) are negatively chargeable charge controllers.
- 16. An image forming method according to claim 15, wherein the toner particles contain 0.1 to 10 parts by weight of combined compound (A) and compound (B) per 100 parts by weight of the binder resin.
- 17. An image forming method according to claim 16, wherein the compound (A) and the compound (B) are contained at a weight ratio f 1:10 to 10:1.
- 18. An image forming method according to claim 1, wherein the silica fine powder has an average particle size of 0.001 to 2.mu..
- 19. An image forming method according to claim 1, wherein the silica fine powder has hydrophobicity of 90% or higher, as determined by its transmittance.
- 20. An image forming method according to claim 19, wherein the silica fine powder has methanol hydrophobicity of 65 or higher according to the methanol titration test.
- 21. An image forming method according to claim 1, wherein the silica fine powder is treated with 5 to 40 parts by weight of the silane coupling agent per 100 parts by weight of the untreated silica fine powder having a BET specific surface are of 40 to 400 m.sup.2 /g, and further treated with A/25.+-.A/30 parts by weight (A represents the BET specific surface area value of the silica fine powder) of said silicone oil.
- 22. An image forming method according to claim 21, wherein the silica fine powder is subjected to heat treatment at a temperature of 50.degree. to 150.degree. C. after the treatment with the silane coupling agent and further subjected to heat treatment at a temperature of 150.degree. to 350.degree. C. after the treatment with the silicone oil.
- 23. An image forming method according to claim 22, wherein the silica fine powder is subjected to heat treatment at a temperature of 200.degree. to 300.degree. C. after the treatment with the silicone oil.
- 24. An image forming method according to claim 1, wherein said silicone oil has a viscosity of 50 to 1000 centistokes at a temperature of 25.degree. C.
- 25. An image forming method according to claim 1, wherein 50% or more of the silanol groups existing on the surfaces of silica particles have reacted with the silane coupling agent at the stage when the silica fine powder is treated with the silane coupling agent.
- 26. An image forming method according to claim 1, wherein 0.01 to 20 parts by weight of the treated silica fine powder is added per 100 parts by weight of the toner particles.
- 27. An image forming method according to claim 26, wherein 0.1 to 3 parts by weight of the treated silica fine powder is added per 100 parts of the toner particles.
Priority Claims (5)
Number |
Date |
Country |
Kind |
61-287171 |
Dec 1986 |
JPX |
|
61-287172 |
Dec 1986 |
JPX |
|
61-287173 |
Dec 1986 |
JPX |
|
61-287174 |
Dec 1986 |
JPX |
|
61-287175 |
Dec 1986 |
JPX |
|
Parent Case Info
This is a division of application Ser. No. 128,263, filed Dec. 1, 1987, now U.S. Pat. No. 4,868,084.
US Referenced Citations (8)
Foreign Referenced Citations (3)
Number |
Date |
Country |
0270063 |
Jun 1988 |
EPX |
63-216061 |
Sep 1988 |
JPX |
2090008 |
Jun 1982 |
GBX |
Divisions (1)
|
Number |
Date |
Country |
Parent |
128263 |
Dec 1987 |
|