Claims
- 1. A toner comprising a toner base and an inorganic external additive, the toner base comprising a binding resin, a colorant, and a fixing assistant including at least one selected from the group consisting of meadowfoam oil derivatives and jojoba oil derivatives that have a number average molecular weight (Mn) in molecular weight in gel permeation chromatography (GPC) of 100 to 5000, a weight average molecular weight (Mw) of 200 to 10000, Mw/Mn of not more than 8, Mz (Z average molecular weight)/Mn of not more than 10 and a heating loss of 220° C. of not more than 8 wt %.
- 2. The toner according to claim 1, wherein the toner comprises 1 to 10 parts by weight of the colorant and 0.1 to 10 parts by weight of the fixing assistant per 100 parts by weight of the binding resin.
- 3. The toner according to claim 2, wherein the toner comprises 3 to 8 parts by weight of the colorant and 0.5 to 8 parts by weight of the fixing assistant per 100 parts by weight of the binding resin.
- 4. The toner according to claim 1, further comprising a polyolefin wax that is graft modified with unsaturated carboxylic acid and has an oxygen number of 6 to 200 mgKOH/g.
- 5. The toner according to claim 4, wherein the toner comprises 0.1 to 10 parts by weight of the polyolefin wax per 100 parts by weight of the binding resin.
- 6. The toner according to claim 1, wherein a melting point of the fixing assistant according to DSC method is 50 to 100° C.
- 7. The toner according to claim 1, wherein a volume increase ratio of the fixing assistant at a temperature equal to or more than the melting point is 2 to 30%.
- 8. The toner according to claim 1, wherein the jojoba oil derivative is at least one selected from the group consisting of jojoba oil fatty acid, a metal salt of jojoba oil fatty acid, jojoba oil fatty acid ester, hydrogenated jojoba oil, jojoba oil amide, homojojoba oil amide, jojoba oil triester, maleic acid derivatives from epoxidized jojoba oil, and isocyanate polymer of jojoba oil fatty acid polyhydric alochol ester.
- 9. The toner according to claim 8, wherein the jojoba oil triester is obtained by epoxidizing jojoba oil, hydrating a resultant for ring-opening, and then effecting acylation.
- 10. The toner according to claim 8, wherein the metal salt of jojoba oil fatty acid is at least one metal salt selected from the group consisting of sodium, potassium, calcium, magnesium, barium, zinc, lead, manganese, iron, nickel, cobalt, and aluminum.
- 11. The toner according to claim 1, wherein the meadowfoam oil derivative is at least one selected from the group consisting of meadowfoam oil fatty acid, a metal salt of meadowfoam oil fatty acid, meadowfoam oil fatty acid ester, hydrogenated meadowfoam oil, meadowfoam oil amide, homomeadowfoam oil amide, meadowfoam oil trester, maleic acid derivatives of epoxidized meadowfoam oil, and isocyanated polymer of meadowfoam oil fatty acid polyhydric alcohol ester.
- 12. The toner according to claim 11, wherein the meadowfoam oil triester is obtained by epoxidizing meadowfoam oil, hydrating a resultant for ring-opening, and effecting acylation.
- 13. The toner according to claim 11, wherein the metal salt of meadowfoam oil fatty acid is at least one metal salt selected from the group consisting of sodium, potassium, calcium, magnesium, barium, zinc, lead, manganese, iron, nickel, cobalt, and aluminum.
- 14. The toner according to claim 1, wherein the inorganic external additive is silica fine powder.
- 15. The toner according to claim 14, wherein the silica fine powder is treated or coated with silicone oil.
- 16. The toner according to claim 14, wherein the silica fine powder has a BET specific surface area by nitrogen adsorption of 30 to 350 m2/g.
- 17. The toner according to claim 14, wherein the silica fine powder has a weight average particle diameter of 5 to 100 nm.
- 18. The toner according to claim 17, wherein the toner comprises 0.1 to 10 parts by weight of the inorganic external additive per 100 parts by weight of the binding resin.
- 19. The toner according to claim 1, wherein the binding resin has a weight average molecular weigh Mw of the toner of 100000 to 600000, a ratio Mw/Mn of the weight average molecular weight Mw to a number average molecular weight Mn of 50 to 100, a ratio Mz/Mn of a Z average molecular weight Mz to the number average molecular weight Mn of 350 to 1200, and a ½ outflow temperature measured by a koka-type flow tester of 100 to 145° C.
- 20. The toner according to claim 1, wherein the binding resin is polyester resin obtained by condensation polymerization between polycarboxylic acid or a lower alkyl ester thereof and polyhydric alcohol, having a weight average molecular weight Mw of 10000 to 300000, a ratio Mw/Mn of the weight average molecular weight Mw to a number average molecular weight Mn of 3 to 50, a ratio Mz/Mn of the Z average molecular weight Mz to the number average molecular weight Mn of 10 to 800, a ½ outflow temperature measured by a koka-type flow tester of 80 to 150° C., and an outflow start temperature of 80 to 120° C.
- 21. The toner according to claim 1, wherein the binding resin comprises a copolymer obtained by copolymerizing at least a styrene based monomer and a monomer represented by Formula 1:Formula 1 (where R1 is a hydrogen atom or a lower alkyl group having 1 to 3 carbon atoms, and R2 is a hydrogen atom, an alkyl group having 1 to 12 carbon atoms, a hydroxylalkyl group having 1 to 12 carbon atoms, or a vinylester group).
- 22. The toner according to claim 1, wherein the binding resin comprises a copolymer obtained by copolymerizing at least a styrene based monomer and monomers represented by Formulae 2 and 3:Formula 2 (where R1 is a hydrogen atom or a lower alkyl group having 1 to 3 carbon atoms, and R2 is a hydrogen atom, an alkyl group having 1 to 12 carbon atoms, a hydroxylalkyl group having 1 to 12 carbon atoms, or a vinylester group)Formula 3 (where R1 is a hydrogen atom or a lower alkyl group having 1 to 3 carbon atoms, and R3 is an alkyl group having 16 to 25 carbon atoms).
- 23. The toner according to claim 1, wherein the binding resin comprises a copolymer obtained by copolymerizing at least a styrene based monomer and monomers represented by Formulae 4 and 5:Formula 4 (where R1 is a hydrogen atom or a lower alkyl group having 1 to 3 carbon atoms, and R2 is a hydrogen atom, an alkyl group having 1 to 12 carbon atoms, a hydroxylalkyl group having 1 to 12 carbon atoms, or a vinylester group)Formula 5 (where R1 is a hydrogen atom or a lower alkyl group having 1 to 3 carbon atoms, and R4 is CnH2n (n: 1 to 5), and R5 is a lower alkyl group having 1 to 5 carbon atoms).
- 24. The toner according to claim 1, further comprising a magnetic body in a toner base.
- 25. The toner according to claim 24, wherein the magnetic body has:an average particle size of 0.02 to 2.0 μm, a ratio D25/D75 of 25% residual diameter D25 to 75% residual diameter D75 of 1.3 to 1.7, a BET specific surface area by nitrogen adsorption of 0.5 to 80 m2/g, an electrical resistance of 102 to 1011 Ωcm, a bulk density of 0.3 to 0.9 g/cc and a compression ratio of 30 to 80%, a capacity of absorbing linseed oil in an amount of 10 to 30 ml/100 g, a remnant magnetization of 5 to 20 emu/g, and a saturation magnetization of 40 to 80 emu/g.
- 26. The toner according to claim 24, wherein the magnetic body is treated with at least one coupling agent selected from the group consisting of a titanium based coupling agent, a silane based coupling agent, an epoxysilane coupling agent, an acrylsilane coupling agent, and an aminosilane coupling agent.
- 27. The toner according to claim 1, constituting a two component developer together with a carrier,wherein the carrier has a volume resistance of 108 to 1014 Ωcm, and has a coating layer of at least one resin selected from the group consisting of an acrylic based resin and a silicone based resin on a surface of magnetic core particles, and the magnetic core particles are at least one selected from the group consisting of Mn ferrite, Mn—Mg ferrite, and Li—Mn ferrite.
- 28. The toner according to claim 17, wherein the inorganic external additive comprises silica and at least one substance selected from the group consisting of metal oxide fine powder and metal acid salt fine powder.
- 29. The toner according to claim 28, wherein the metal acid salt fine powder comprises at least one selected from the group consisting of titanate based fine powder and zirconate based fine powder having an average particle size of 0.02 to 4 μm and a BET specific surface area by nitrogen adsorption of 0.1 to 100 m2/g.
- 30. The toner according to claim 28, wherein the metal acid salt fine powder is prepared by one method selected from the group consisting of a hydrothermal method or an oxalate thermal decomposition method.
- 31. The toner according to claim 28, wherein the metal oxide fine powder comprises at least one selected from the group consisting of titanium oxide fine powder, aluminum oxide fine powder, strontium oxide fine powder, tin oxide fine powder, zirconium oxide fine powder, magnesium oxide fine powder, and indium oxide fine powder having an average particle size of 0.02 to 2 μm, a BET specific surface area by nitrogen adsorption of 0.1 to 100 m2/g and an electrical resistivity of not more than 109 Ωcm.
- 32. The toner according to claim 28, wherein the metal oxide fine powder is at least one fine powder selected from the group consisting of titanium oxide fine powder and silica oxide fine powder whose surface is coated with a mixture of tin oxide and antimony having a BET specific surface area by nitrogen adsorption of 1 to 200 m2/g.
- 33. The toner according to claim 28, wherein the metal oxide fine powder comprises a magnetic body having:an average particle size of 0.02 to 2.0 μm, a ratio D25/D75 of 25% residual diameter D25 to 75% residual diameter D75 of 1.3 to 1.7, a BET specific surface area by nitrogen adsorption of 0.5 to 80 m2/g, an electrical resistance of 102 to 1011 Ωcm, a bulk density of 0.3 to 0.9 g/cc and a compression ratio of 30 to 80%, a capacity of absorbing linseed oil in an amount of 10 to 30 ml/100 g, a remnant magnetization of 5 to 20 emu/g, and a saturation magnetization of 40 to 80 emu/g.
- 34. A method for producing a toner comprising the steps of pre-blending a toner base component material comprising at least a binding resin and a colorant, kneading the toner base, pulverizing the same, classifying the produced colored particles to cut off powder toner for a predetenrined particle size distribution,wherein a fixing assistant is added to a solution of the binding resin before the pre-blending step, and the binding resin has weight average molecular weight Mw in a molecular weight distribution of 100000 to 600000, a ratio Mw/Mn of the weight average molecular weight Mw to a number average molecular weight Mn of 50 to 100, a ratio Mz/Mn of a Z average molecular weight Mz to the number average molecular weight Mn of 350 to 1200, and a ½ outflow temperature measured by a koka-type flow tester of 100 to 145° C., and the fixing assistant comprises at least one selected from the group consisting of meadowfoam oil derivatives and jojoba oil derivatives that have a number average molecular weight (Mn) in molecular weight in GPC of 100 to 5000, a weight average molecular weight (Mw) of 200 to 10000, Mw/Mn of not more than 8, Mz (Z average molecular weight)/Mn of not more than 10 and a heating loss at 220° C. of not more than 8 wt %, and then further removing a solvent.
- 35. The method for producing a toner according to claim 34, wherein the binding resin comprises a main component obtained by adding at least one compound selected from the group consisting of meadowfoam oil and derivatives thereof and jojoba oil and derivatives thereof to a binding resin solution, and removing a solvent.
- 36. The method for producing a toner according to claim 34, wherein the binding resin is polyester resin obtained by condensation polymerization between polycarboxylic acid or a lower alkyl ester thereof and polyhydric alcohol, having a weight average molecular weight Mw of 10000 to 300000, a ratio Mw/Mn of the weight average molecular weight Mw to a number average molecular weight Mn of 3 to 50, a ratio Mz/Mn of the Z average molecular weight Mz to the number average molecular weight Mn of 10 to 800, a ½ outflow temperature measured by a koka-type flow tester of 80 to 150° C., and an outflow start temperature of 80 to 120° C.
- 37. The method for producing a toner according to claim 34, wherein the powder toner that is cut off by the classification step is returned to the pre-blending step again, and reused to be pre-blended with the toner base component material.
- 38. The method for producing a toner according to claim 37, wherein a ratio of the powder toner that is cut off by the classification to the toner base component material is 2:98 to 40:60.
- 39. The method for producing a toner according to claim 34, wherein the toner comprises an ester based wax having an iodine value of not more than 25 and a saponification value of 30 to 300.
- 40. The method for producing a toner according to claim 34, wherein the toner comprises a polyolefin wax that is graft modified with unsaturated carboxylic acid and has an oxygen number of 6 to 200 mgKOH/g.
- 41. A toner comprising a resin as a main component, wherein the resin is formed with a binding resin having a weight average molecular weight Mw in a molecular weight distribution of 100000 to 600000, a ratio Mw/Mn of the weight average molecular weight Mw to a number average molecular weight Mn of 50 to 100, a ratio Mz/Mn of a Z average molecular weight Mz to the number average molecular weight Mn of 350 to 1200, and a ½ outflow temperature measured by a koka-type flow tester of 100 to 145° C., and adding a fixing assistant comprising at least one selected from the group consisting of meadowfoam oil derivatives and jojoba oil derivatives that have a number average molecular weight (Mn) in molecular weight in GPC of 100 to 5000, a weight average molecular weight (Mw) of 200 to 10000 Mw/Mn of not more than 8, Mz (Z average molecular weight)/Mn of not more than 10 and a heating loss at 220° C. of not more than 8 wt % to a solution of the binding resin, and then removing a solvent.
- 42. A toner comprising at least a colorant, a binding resin, a fixing assistant and an inorganic external additive,the binding resin is polyester resin obtained by condensation polymerization between polycarboxylic acid or a lower alkyl ester thereof and polyhydric alcohol, having a weight average molecular weight Mw of 10000 to 300000, a ratio Mw/Mn of the weight average molecular weight Mw to a number average molecular weight Mn of 3 to 50, a ratio Mz/Mn of the Z average molecular weight Mz to the number average molecular weight Mn of 10 to 800, the fixing assistant is an ester-based wax having a number average molecular weight Mn of 100 to 5000, a weight average molecular weight Mw of 200 to 10000, Mw/Mn of not more than 8, Mz (Z average molecular weight)/Mn of not more than 10, a heating loss at 220° C. of not more than 8 wt %, an iodine value of not more than 25, and a saponification value of 30 to 300, and the inorganic external additive comprises fine powder of at least one selected from the group consisting of titanium oxide and silica oxide.
- 43. The toner according to claim 42, wherein a melting point of the fixing assistant according to DSC method is 50 to 100° C.
- 44. The toner according to claim 42, wherein a volume increase ratio of the fixing assistant at a temperature equal to or more than the melting point is 2 to 30%.
Priority Claims (5)
Number |
Date |
Country |
Kind |
10-178545 |
Jun 1998 |
JP |
|
10-223940 |
Aug 1998 |
JP |
|
10-223941 |
Aug 1998 |
JP |
|
10-223942 |
Aug 1998 |
JP |
|
10-233948 |
Aug 1998 |
JP |
|
Parent Case Info
This application is a continuation of application Ser. No. 09/337,843, filed Jun. 21, 1999, which application(s) are incorporated herein by reference.
US Referenced Citations (9)
Foreign Referenced Citations (8)
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0 417 016 |
Mar 1991 |
EP |
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GB |
58-60754 |
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JP |
58-223155 |
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59-148067 |
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1-252982 |
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2-212867 |
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4-190240 |
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Continuations (1)
|
Number |
Date |
Country |
Parent |
09/337843 |
Jun 1999 |
US |
Child |
09/754157 |
|
US |