Claims
- 1. A developer for developing an electrostatic image, comprising: toner particles and an external additive; wherein each toner particle comprises:(i) 100 wt. parts of a binder resin having a glass transition point (Tg) of 50-70° C., wherein the binder resin is selected from the group consisting of (a) a binder resin comprising a styrene homopolymer or copolymer and containing a THF-soluble component providing a molecular weight distribution on a GPC chromatogram showing at least one peak (P1) in a molecular weight region of 3×103-5×104 and at least one peak (P2) in a molecular weight region of at least 105; (b) a binder resin comprising a polyester resin and containing a THF-soluble component giving a molecular weight distribution on a GPC chromatogram showing a main peak in a molecular weight region of 3×103-1.5×104 and a ratio Mw/Mn between weight average molecular weight and number average molecular weight of at least 10; and (c) mixtures of (a) and (b); (ii) 0.2-20 wt. parts of a solid wax, (iii) colorant particles, magnetic powder or a mixture thereof, and (iv) lubricating particles carrying a liquid lubricant; wherein the liquid lubricant is an oil selected from the group consisting of dimethylsilicone, methylphenylsilicone, methylhydrogen silicone, non-reactive silicones and fluorinated hydrocarbons, wherein the lubricating particles are used in a proportion of 1 to 3 wt. parts per 100 wt. parts of the binder resin, and the toner particles retain the liquid lubricant at their surface.
- 2. The developer according to claim 1, wherein said lubricating particles carry 10-90 wt. % of the liquid lubricant based on the lubricating particles.
- 3. The developer according to claim 1, wherein said toner particles comprise 0.1-20 wt. parts of colorant particles, 10-200 wt. parts of magnetic powder or a mixture thereof per 100 wt. parts of the binder resin and wherein the lubricating particles carrying 10-90 wt. % of the liquid lubricant based on the lubricating particles.
- 4. The developer according to claim 1, wherein said lubricating particles are inorganic compound particles carrying the liquid lubricant.
- 5. The developer according to claim 4, wherein said inorganic compound particles comprise particles of a member selected from the group consisting of SiO2, Al2O3 and TiO2.
- 6. The developer according to claim 4, wherein the inorganic compound particles have a particle size of 0.001-20 μm.
- 7. The developer according to claim 6, wherein the inorganic compound particles have a particle size of 0.005-10 μm.
- 8. The developer according to claim 4, wherein the inorganic compound particles have a BET specific surface area of 5-500 m2/g.
- 9. The developer according to claim 8, wherein the inorganic compound particles have a BET specific surface area of 10-400 m2/g.
- 10. The developer according to claim 9, wherein the inorganic compound particles have a BET specific surface area of 20-350 m2/g.
- 11. The developer according to claim 4, wherein said liquid lubricant constitutes 20-85 wt. % of the lubricating particles.
- 12. The developer according to claim 11, wherein said liquid lubricant constitutes 40-80 wt. % of the lubricating particles.
- 13. The developer according to claim 4, wherein said inorganic compound particles comprise particles of at least one member selected from the group consisting of SiO2, GeO2, TiO2, SnO2, Al2O3, B2O3, P2O5, silicates, borates, phosphates, germanates, borosilicates, aluminosilicates, aluminoborates, alumino borosilicates, tungstenates, molybdenates, tellurates, silicon carbide, silicon nitride, and amorphous carbon.
- 14. The developer according to claim 1, wherein said lubricating particles have a particle size of at least 0.5 μm.
- 15. The developer according to claim 14, wherein said lubricating particles have a particle size of at least 1 μm.
- 16. The developer according to claim 15, wherein said lubricating particles have a particle size of at least 3 μm.
- 17. The developer according to claim 1, wherein said lubricating particles are porous powder carrying the liquid lubricant.
- 18. The developer according to claim 17, wherein said porous powder has a BET specific surface area of 10-50 m2/g.
- 19. The developer according to claim 1, wherein said solid wax has a heat absorption characteristic giving an onset temperature of at least 50° C. on its DSC curve.
- 20. The developer according to claim 19, wherein said solid wax provides a heat-absorption peak having a peak top temperature of at least 50° C. on its DSC curve.
- 21. The developer according to claim 20, wherein said solid wax provides a heat-absorption peak onset temperature of 50-120° C. on its DSC curve on temperature increase.
- 22. The developer according to claim 21, wherein said solid wax provides a heat-absorption peak onset temperature of 60-110° C. on its DSC curve on temperature increase.
- 23. The developer according to claim 21, wherein said solid wax provides a heat-absorption peak showing a terminal onset temperature of at least 60° C. on its DSC curve on temperature increase.
- 24. The developer according to claim 23, wherein said solid wax provides a heat-absorption peak showing a terminal onset temperature of 80-140° C. on its DSC curve on temperature increase.
- 25. The developer according to claim 20, wherein said solid wax provides a maximum heat-absorption peak having a peak top temperature of 70-130° C.
- 26. The developer according to claim 1, wherein said liquid lubricant has a viscosity at 25° C. of 10-200,000 cSt.
- 27. The developer according to claim 1, wherein said magnetic powder is a silicon-containing magnetic powder.
- 28. The developer according to claim 27, wherein said liquid lubricant has a viscosity at 25° C. of 20-50,000 cSt.
- 29. The developer according to claim 28, wherein said liquid lubricant has a viscosity at 25° C. of 50-20,000 cSt.
- 30. The developer according to claim 1, wherein said colorant particles comprise carbon black or an organic pigment.
- 31. The developer according to claim 1, wherein said toner particles have been heat-treated.
- 32. The developer according to claim 1, wherein said magnetic powder comprises magnetic iron oxide particles.
- 33. The developer according to claim 32, wherein said magnetic iron oxide particles contain a compound selected from the group consisting of silicon oxide, aluminum oxide, magnesium oxide, silicon hydroxide, aluminum hydroxide and magnesium hydroxide at the surface or inside thereof.
- 34. The developer according to claim 32, wherein said magnetic iron oxide particles contain silicon at the surface or inside thereof.
- 35. The developer according to claim 34, wherein said magnetic iron oxide particles contain 0.1-3 wt. % of silicon based on the magnetic iron oxide particles.
- 36. The developer according to claim 35, wherein said magnetic iron oxide particles contain 0.2-2 wt. % of silicon based on the magnetic iron oxide particles.
- 37. The developer according to claim 36, wherein said magnetic iron oxide particles contain 0.25-1.0 wt. % of silicon based on the magnetic iron oxide particles.
- 38. The developer according to claim 1, wherein said magnetic powder has a BET specific surface area of 1-40 m2/g.
- 39. The developer according to claim 38, wherein said magnetic powder has a BET specific surface area of 2-30 m2/g.
- 40. The developer according to claim 39, wherein said magnetic powder has a BET specific surface area of 3-20 m2/g.
- 41. The developer according to claim 1, wherein said magnetic powder has a saturation magnetization of 5-200 emu/g and a residual magnetization of 1-100 emu/g under a magnetic field of 10 kilo-oersted.
- 42. The developer according to claim 1, wherein said magnetic powder has a saturation magnetization of 10-150 emu/g and a residual magnetization of 1-70 emu/g under a magnetic field of 10 kilo-oersted.
- 43. The developer according to claim 1, wherein said magnetic powder is contained in an amount of 20-170 parts per 100 wt. parts of the binder resin.
- 44. The developer according to claim 43, wherein said magnetic powder is contained in an amount of 30-150 parts per 100 wt. parts of the binder resin.
- 45. The developer according to claim 1, wherein said colorant particles are contained in an amount of 0.2-10 wt. parts per 100 wt. parts of the binder resin.
- 46. The developer according to claim 1, wherein said magnetic powder has a bulk density of no greater than 1.0 g/cm3.
- 47. The developer according to claim 1, wherein the THF-soluble component of binder resin (a) has a molecular weight distribution on a GPC chromatogram showing at least one peak (P1) in a molecular weight region of 3×103-3×104 and at least one peak (P2) in a molecular weight region of 3×105-5×106.
- 48. The developer according to claim 47, wherein the THF-soluble component has a molecular weight distribution on a GPC chromatogram showing at least one peak (P1) in a molecular weight region of 5×103-2×104 and at least one peak (P2) in a molecular weight region of 3×105-2×106.
- 49. The developer according to claim 1, wherein said solid wax is selected from the group consisting of paraffin wax, montan wax, Fischer-Tropsch wax, polyolefin wax, and carnauba wax.
- 50. The developer according to claim 1, wherein said solid wax is contained in an amount of 0.5-10 wt. parts per 100 wt. parts of the binder resin.
- 51. The developer according to claim 1, wherein said solid wax has a number-average molecular (Mn) of 300-1500, a weight-average molecular weight (Mw) of 500-4500, and an Mw/Mn ratio of at most 3.0.
- 52. The developer according to claim 51, wherein said solid wax has an Mn of 350-1200, an Mw of 550-3600, and an Mw/Mn ratio of at most 2.5.
- 53. The developer according to claim 52, wherein said solid wax has an Mn of 400-1000, an Mw of 600-3000, and an Mw/Mn ratio of at most 2.0.
- 54. The developer according to claim 51, wherein said solid wax is selected from the group consisting of polyolefin wax, hydrocarbon wax, and long-chain alkyl alcohol wax having up to 100 carbon atoms.
- 55. The developer according to claim 1, wherein said solid wax has a carbon number distribution as measured by gas chromatography giving a largest peak at a carbon number of at least 30.
- 56. The developer according to claim 55, wherein said solid wax has a carbon number distribution as measured by gas chromatography giving a largest peak at a carbon number of at least 40.
- 57. The developer according to claim 55, wherein said solid wax has a carbon number distribution as measured by gas chromatography including a principal component composed of continuous carbon numbers.
- 58. The developer according to claim 1, wherein said toner particles contain a positive charge control agent.
- 59. The developer according to claim 1, wherein said toner particles contain a negative charge control agent.
- 60. The developer according to claim 1, wherein said external additive comprises inorganic fine powder having a BET surface area of at least 20 m2/g treated with nitrogen-containing organosilane compound and silicone oil.
- 61. The developer according to claim 1, wherein said external additive is inorganic fine powder treated with an organic agent, said fine powder comprising an inorganic compound selected from the group consisting of silica, alumina, titania, germanium oxide, zirconium oxide, silicon carbide, titanium carbide, silicon nitride and germanium nitride, and said fine powder having a BET specific surface area of at least 20 m2/g prior treatment with the organic agent.
- 62. The developer according to claim 61, wherein said organic agent comprises an organosilicone compound or a titanium coupling agent.
- 63. The developer according to claim 1, wherein the THF-soluble component of binder resin (a) has a molecular weight distribution on a GPC chromatogram containing at least 50% of component having a molecular weight of at most 105.
Priority Claims (4)
Number |
Date |
Country |
Kind |
5-323424 |
Nov 1993 |
JP |
|
5-346992 |
Dec 1993 |
JP |
|
6-089949 |
Apr 1994 |
JP |
|
6-118550 |
May 1994 |
JP |
|
Parent Case Info
This application is a division of application Ser. No. 08/350,109 filed Nov. 29, 1994, refiled as application Ser. No. 08/821,408, now issued U.S. Pat. No. 6,077,638.
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