WO1999023535A1 - FUSER MEMBER WITH SURFACE TREATED SnO2 FILLER - Google Patents

FUSER MEMBER WITH SURFACE TREATED SnO2 FILLER Download PDF

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Publication number
WO1999023535A1
WO1999023535A1 PCT/US1998/021774 US9821774W WO9923535A1 WO 1999023535 A1 WO1999023535 A1 WO 1999023535A1 US 9821774 W US9821774 W US 9821774W WO 9923535 A1 WO9923535 A1 WO 9923535A1
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WO
WIPO (PCT)
Prior art keywords
fuser member
mole percent
fluoroelastomer
filler
fuser
Prior art date
Application number
PCT/US1998/021774
Other languages
French (fr)
Inventor
Biao Tan
Jiann Hsing Chen
Tonya Deon Binga
William Joseph Staudenmayer
Original Assignee
Eastman Kodak Company
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Eastman Kodak Company filed Critical Eastman Kodak Company
Priority to EP19980953549 priority Critical patent/EP1027631B1/en
Priority to DE1998615878 priority patent/DE69815878T2/en
Priority to JP2000519330A priority patent/JP2001522067A/en
Publication of WO1999023535A1 publication Critical patent/WO1999023535A1/en

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    • GPHYSICS
    • G03PHOTOGRAPHY; CINEMATOGRAPHY; ANALOGOUS TECHNIQUES USING WAVES OTHER THAN OPTICAL WAVES; ELECTROGRAPHY; HOLOGRAPHY
    • G03GELECTROGRAPHY; ELECTROPHOTOGRAPHY; MAGNETOGRAPHY
    • G03G15/00Apparatus for electrographic processes using a charge pattern
    • G03G15/20Apparatus for electrographic processes using a charge pattern for fixing, e.g. by using heat
    • G03G15/2003Apparatus for electrographic processes using a charge pattern for fixing, e.g. by using heat using heat
    • G03G15/2014Apparatus for electrographic processes using a charge pattern for fixing, e.g. by using heat using heat using contact heat
    • G03G15/2053Structural details of heat elements, e.g. structure of roller or belt, eddy current, induction heating
    • G03G15/2057Structural details of heat elements, e.g. structure of roller or belt, eddy current, induction heating relating to the chemical composition of the heat element and layers thereof
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y10TECHNICAL SUBJECTS COVERED BY FORMER USPC
    • Y10TTECHNICAL SUBJECTS COVERED BY FORMER US CLASSIFICATION
    • Y10T428/00Stock material or miscellaneous articles
    • Y10T428/31504Composite [nonstructural laminate]
    • Y10T428/3154Of fluorinated addition polymer from unsaturated monomers

Definitions

  • This invention relates generally to heat fusing members and methods of making same. More particularly, it relates to an improved fuser roller surface that decreases toner offset and abrasion and increases toner release and thermal conductivity.
  • fuser roller overcoats are made with layers of polydimethylsiloxane (PDMS) elastomers, fluorocarbon resins and fluorocarbon elastomers.
  • PDMS elastomers have low surface energy and relatively low mechanical strength, but is adequately flexible and elastic and can produce high quality fused images. After a period of use, however, the self- release property of the roller degrades and offset begins to occur.
  • Application of a PDMS oil during use enhances the release property of the fuser roller surface but shortens roller life due to oil swelling.
  • Fluorocarbon resins like polytetrafluoro- ethylene (PTFE) have good release property but less flexibility and elasticity than PDMS elastomers.
  • Fluorocarbon elastomers, such as VitonTM and FluorelTM are tough, flexible, resistant to high temperatures, durable and do not swell, but they have relatively high surface energy and poor thermal conductivity.
  • Particulate inorganic fillers have been added to fluorocarbon elastomers and silicone elastomers to increase mechanical strength and thermal conductivity.
  • High thermal conductivity is an advantage because heat needs to be efficiently and quickly transmitted from an internally heated core to the outer surface of the fuser roller to fuse the toners and yield the desired toner images.
  • incorporation of inorganic fillers to improve thermal conductivity has a major drawback: it increases the surface energy of fuser roller surface and also increases the interaction of the filler with the toner and receiver. After a period of use, the toner release properties of the roller degrade and toner offset begins to occur due to roller wear and weak interaction between the filler and the polymer matrix. It would be desirable to provide a fuser member having a fluorocarbon elastomer overcoat layer containing thermally conductive inorganic fillers, but which still has a moderately low surface energy and good toner release property. In addition, it should be compatible with the functionalized polymeric release agent employed during fixing process.
  • Fuser members of fluorocarbon elastomer containing inorganic filler are disclosed, for example, U.S. Patent No. 5,464,698 to Chen et al. which describes fuser rollers having a surface layer comprising fluorocarbon elastomer and tin oxide fillers.
  • the fillers provide active sites for reacting the mercapto- functional polydimethylsiloxane.
  • the inorganic fillers are untreated and remain highly reactive with the toner and charge control agent, and this is undesirable.
  • U.S. Patent No. 5,595,823 to Chen et al. describes fuser rollers having a surface layer comprising fluorocarbon elastomer and aluminum oxide fillers which also are untreated and are prone to high reactivity with toner and charge control agent which, again, is undesirable.
  • U.S. Patent No. 5,017,432 to Eddy et al. describes a fluorocarbon elastomer fuser member which contains cupric oxide to interact with the poly- meric release agent and provide an interfacial barrier layer.
  • Fuser members of condensation-crosslinked PDMS elastomers filled with metal oxides are disclosed, for example, in U.S. Patent No. 5,401,570 to Heeks et al. This patent describes a silicone rubber fuser member containing aluminum oxide fillers which react with a silicone hydride release oil.
  • U.S. Patent No. 5,480,724 to Fitzgerald et al. discloses tin oxide fillers which decrease fatigue and creep (or compression) of the PDMS rubber during continuous high temperature and high stress (i.e. pressure) conditions.
  • Some metal oxide filled condensation-cured PDMS elastomers are also disclosed in U.S. Patent No. 5,269,740 (cupric oxide filler), U.S. Patent No. 5,292,606 (zinc oxide filler), U.S. Patent No. 5,292,562 (chromium oxide filler), and U.S. Patent No. 5,336,596 (nickel oxide filler). All provide good results.
  • the metal oxide fillers that are exposed react not only with the functionalized polymeric release agent, but also with the toner, paper substrate and charge control agent. Such reactions build up debris on the surface of the fuser roller, causing deterioration of toner release and great reduction in the life of the fuser roller.
  • fuser members whose metal oxide fillers are made to enhance the interaction between elastomer and filler and also between the polymeric release agent and filler.
  • the present invention provides an effective way to solve the prob- lems described above.
  • the present invention provides a fuser member with the desired thermal conductivity and toner release properties.
  • the invention provides a fuser member comprising a support and coated thereon a fluoroelastomer layer comprising a metal oxide filler selected from tin oxide, cupric oxide, and mixtures thereof, said filler having been treated with a silane coupling agent.
  • the present invention also provides a method of making a fuser member comprising the steps of a) providing a cylindrical core; b) compounding a fluoroelastomer with a metal oxide filler selected from tin oxide, cupric oxide, and mixtures thereof, the filler having been treated with a silane coupling agent; c) coating the fluoroelastomer on the cylindrical core; and d) curing the fuser member.
  • Metal oxide fillers which have been thus modified can interact with fluorocarbon polymers and bond with them. Such fillers also help to wet the surface and thereby facilitate compounding.
  • the fuser member of the invention greatly improves fuser/toner release, toner offset on the roller surface and decreases abrasion of the fuser member overcoat.
  • the invention provides an effective, durable fuser roller and high quality copies at high speed.
  • the toner/fuser release can be further improved by applying to the outermost layer of the fuser member an effective amount of a polymethyldi- siloxane (PDMS) release agent that, optionally, includes at least one functional group reactive with the fluoroelastomer, followed by incubation at an elevated temperature.
  • PDMS polymethyldi- siloxane
  • the fluorocarbon elastomers used in the invention were prepared according to the method described in commonly owned US Serial No. 08/805,479 of Chen et al. filed February 25, 1997, titled TONER FUSER MEMBER HAVING A METAL OXIDE FILLED FLUOROELASTOMER OUTER LAYER WITH IMPROVED TONER RELEASE as follows.
  • the outermost layer comprises a cured fluoroelastomer, preferably a terpolymer of vinylidene fluoride (VF), tetrafluoroethylene (TFE), and hexafluoropropylene (HFP), that includes at least about 21 mole percent HFP and, preferably, at least about 50 mole percent VF.
  • VF vinylidene fluoride
  • TFE tetrafluoroethylene
  • HFP hexafluoropropylene
  • VitonTM materials obtainable from DuPont, are frequently employed for the fabrication of fuser members . These materials include VitonTM A , containing 25 mole percent HFP; Viton TM E45, containing 23 mole percent HFP; and Viton TM GF, containing 34 mole percent HFP.
  • a preferred fluoroelastomer for the outermost layer of the fuser member of the present invention is Fluorel TM FX-9038, available from 3M, containing 52 mole percent VF, 34 mole percent TFE, and 14 mole percent HFP. More preferred is FluorelTM FE-5840Q, also available from 3M, containing 53 mole percent VF, 26 mole percent TFE, and 21 mole percent HFP.
  • At least 10 parts by weight of metal oxide per 100 parts by weight of cured fluoroelastomer are included in the outermost layer of the fuser member.
  • the metal oxide may be cupric oxide, tin oxide, or mixtures thereof. In a preferred embodiment, 10 to 50 parts of cupric oxide are included in the outermost layer.
  • Alumina may also be included as a thermally conductive filler in the layer; in one embodiment, 120 parts per 100 parts (by weight) of fluoroelastomer are incorporated.
  • the preferred silane coupling has the general structure:
  • M aliphatic or aromatic chain with C atom numbers vary from 0-20.
  • R proton, phenyl or alkyl, etc.
  • Lj, L 2 , L 3 Alkoxy, alkyl, halide, etc. with C atom numbers vary from 0-10 and at least one of the L should be alkoxy or halide.
  • X negative counter ion, e.g. chloride ion, bromide ion, etc.
  • Suitable coupling agents are 3-aminopropyltrimethoxysilane, 3-aminopropyltriethoxysilane, N-phenylaminopropyltrimethoxysilane,
  • 3-aminopropylmethyldiethoxysilane 3-(2-aminoethylamino)propyl- trimethoxysilane, 3-(2-N-benzylaminoethylaminopropyl)trimethoxysilane hydrochloride, etc.
  • the fuser member of the invention exhibits generally good toner offset and release characteristics
  • these properties may be improved by applying a polydimethylsiloxane (PDMS) release agent to the outermost layer and incubating the fuser member to form a surface that displays enhanced toner release.
  • PDMS release agents which include a functional group that is reactive with the fluoroelastomer, have the formula
  • R is alkyl or aryl
  • Z is selected from the group consisting of hydrogen, aminoalkyl containing up to about 8 carbon atoms, and mercaptoalkyl containing up to about 8 carbon atoms, and the ratio of a:b is about 1 : 1 to 3000: 1.
  • Z is hydrogen, aminopropyl, or mercaptopropyl.
  • Z is hydrogen and the a:b ratio is about 10:1 to 200: 1.
  • Z is aminopropyl and the a:b ratio is about 200: 1 to 2,000: 1.
  • An example of a hydrogen-functionalized PDMS release agent is EKJPS- 124.5 (available from United Chemical), which contains 7.5 mole percent of the functionalized component and has a viscosity of 225 centistokes.
  • Xerox amino-functionalized PDMS 8R3995 fuser agent II contains 0.055 mole percent of an aminopropyl-substituted component and has a viscosity of 300 centistokes.
  • Xerox mercapto-functionalized PDMS 8R2955 contains 0.26 mole percent of a mercaptopropyl-substituted component and has a viscosity of 275 centistokes.
  • a non-functionalized PDMS release oil, DC-200 (from Dow Corning), is useful for purposes of comparison with the functionalized agents and has a viscosity of 350 centistokes.
  • FluorelTM FE Fluoroelastomer 5840Q ter-polymer of vinylidene fluoride, hexafluoropropylene and tetrafluoroethylene (FE5840Q) — 3M, Co. MgO (MagliteTM D)— Merck/Calgon Corp. Ca(OH) 2 — Aldrich® SnO (CS3) — Magnesium Electron, Inc. CuO— J.T. Baker® 3-Aminopropyltriethoxylsilane (NCR) — PCR®
  • the invention is further illustrated by the following examples and comparative examples.
  • Treatment solution was freshly prepared by adding aminopropyl- triethoxylsilane (2wt. ) to EtOH/H 2 O (95/5 by vol.) solvent and stirred for 10 minutes. Fillers (SnO or CuO or mixtures thereof) were covered by solution and stirred in ultrasonic bath for 10 minutes. Fillers were then washed twice with EtOH and dried under reduced pressure (under vacuum) at 150°C for 30 minutes and at room temperature overnight.
  • FluorelTM FE5840Q 100 gm
  • MgO 3 gm
  • Ca(OH)2 6 gm
  • surface treated SnO 2 --(138 gm) and CuO 50 gm— were thoroughly compounded in a two roll mill with water cooling at 63°F (17°C) until a uniform, dry composite sheet was obtained.
  • the fluoroelastomer-treated fillers gum obtained as described above was compression molded into 75-mil plaques, with curing for 20 minutes at 350°F (177°C) under 45 tons pressure and post-curing for 48 hours at 450°F (232°C).
  • the plaques were employed in tests to evaluate the toner offset and release characteristics, wear and thermal conductivity as described below and results are indicated in Table 1.
  • Example 1 Substantially the same procedure as in Example 1 , except that the SnO2 and CuO fillers were not surface treated and the results are indicated in Table 1.
  • COMPARATIVE EXAMPLE 2 (C-2) Substantially the same procedure as in Example 1 , except that the 138 parts SnO2 and 10 parts CuO fillers were not surface treated. The results are indicated in Table 1.
  • test plaques obtained as described above are employed to evaluate the toner offset and release force characteristics of the outermost layer of the fuser members.
  • a plaque is cut into 1-inch (2.56-cm) squares. One of these squares is left untreated by release agent.
  • To the surface of each of four squares is applied in unmeasured amount, one of the previously mentioned PDMS release oils: non-functionalized release oil DC-200 (PDMS); hydrogen-functionalized oil EK/PA- 124.5 (PDMS-H); Xerox amino-functionalized PDMS 8R79 (PDMS- NH 2 ); and Xerox mercapto-functionalized PDMS 8R2955 (PDMS-SH).
  • each sample was incubated overnight at a temperature of 175°C. Following this treatment, the surface of each sample was wiped with dichloro- methane. Each sample was then soaked in dichloromethane for one hour and allowed to dry before off-line testing for toner offset and release properties. Each sample, including those untreated with release agent, was tested in the following manner:
  • a 1-inch (2.56-cm) square of paper covered with unfused styrene- butyl acrylate toner was placed in contact with a sample on a bed heated to 175°C, and a pressure roller set for 80 psi was locked in place over the laminate to form a nip. After 20 minutes the roller was released from the laminate.
  • the extent of offset for each sample was determined by microscopic examination of the sample surface following delamination. The following numerical evaluation, corresponding to the amount of toner remaining on the surface, was employed.
  • a piece of plaque 9/16"x2" was cut for the wear test.
  • a Norman abrader (by Norman Tool, Inc.) was used, and the temperature was set at 350°F. The speed was set at -30 cycles/minute and the load was set at 984 g.
  • Thermal Conductivity Measurement A round piece of plaque 5 cm diameter was cut for the test. Thermal conductivity was measured by Holometrix TM TCA-100 Thermal Conductivity Analyzer. Reported values (BTU/hr-ft-°F) were from two stacks of samples.

Abstract

A fuser member having improved toner offset release and wear characteristics. The outermost layer comprises a fluoroelastomer with thermally conductive fillers which are surface treated with a coupling agent that is interactive with the fluoroelastomer and with a release agent which may, optionally, be used on the surface of the fluoroelastomer layer.

Description

FUSER MEMBER WITH SURFACE TREATED SnO? FILLER
FIELD OF THE INVENTION
This invention relates generally to heat fusing members and methods of making same. More particularly, it relates to an improved fuser roller surface that decreases toner offset and abrasion and increases toner release and thermal conductivity.
BACKGROUND OF THE INVENTION
In electrophotographic fuser systems, fuser roller overcoats are made with layers of polydimethylsiloxane (PDMS) elastomers, fluorocarbon resins and fluorocarbon elastomers. PDMS elastomers have low surface energy and relatively low mechanical strength, but is adequately flexible and elastic and can produce high quality fused images. After a period of use, however, the self- release property of the roller degrades and offset begins to occur. Application of a PDMS oil during use enhances the release property of the fuser roller surface but shortens roller life due to oil swelling. Fluorocarbon resins like polytetrafluoro- ethylene (PTFE) have good release property but less flexibility and elasticity than PDMS elastomers. Fluorocarbon elastomers, such as Viton™ and Fluorel™, are tough, flexible, resistant to high temperatures, durable and do not swell, but they have relatively high surface energy and poor thermal conductivity.
Particulate inorganic fillers have been added to fluorocarbon elastomers and silicone elastomers to increase mechanical strength and thermal conductivity. High thermal conductivity is an advantage because heat needs to be efficiently and quickly transmitted from an internally heated core to the outer surface of the fuser roller to fuse the toners and yield the desired toner images.
However, incorporation of inorganic fillers to improve thermal conductivity has a major drawback: it increases the surface energy of fuser roller surface and also increases the interaction of the filler with the toner and receiver. After a period of use, the toner release properties of the roller degrade and toner offset begins to occur due to roller wear and weak interaction between the filler and the polymer matrix. It would be desirable to provide a fuser member having a fluorocarbon elastomer overcoat layer containing thermally conductive inorganic fillers, but which still has a moderately low surface energy and good toner release property. In addition, it should be compatible with the functionalized polymeric release agent employed during fixing process.
Fuser members of fluorocarbon elastomer containing inorganic filler are disclosed, for example, U.S. Patent No. 5,464,698 to Chen et al. which describes fuser rollers having a surface layer comprising fluorocarbon elastomer and tin oxide fillers. The fillers provide active sites for reacting the mercapto- functional polydimethylsiloxane. However, the inorganic fillers are untreated and remain highly reactive with the toner and charge control agent, and this is undesirable.
U.S. Patent No. 5,595,823 to Chen et al. describes fuser rollers having a surface layer comprising fluorocarbon elastomer and aluminum oxide fillers which also are untreated and are prone to high reactivity with toner and charge control agent which, again, is undesirable.
U.S. Patent No. 5,017,432 to Eddy et al. describes a fluorocarbon elastomer fuser member which contains cupric oxide to interact with the poly- meric release agent and provide an interfacial barrier layer.
Fuser members of condensation-crosslinked PDMS elastomers filled with metal oxides are disclosed, for example, in U.S. Patent No. 5,401,570 to Heeks et al. This patent describes a silicone rubber fuser member containing aluminum oxide fillers which react with a silicone hydride release oil. U.S. Patent No. 5,480,724 to Fitzgerald et al. discloses tin oxide fillers which decrease fatigue and creep (or compression) of the PDMS rubber during continuous high temperature and high stress (i.e. pressure) conditions.
Some metal oxide filled condensation-cured PDMS elastomers are also disclosed in U.S. Patent No. 5,269,740 (cupric oxide filler), U.S. Patent No. 5,292,606 (zinc oxide filler), U.S. Patent No. 5,292,562 (chromium oxide filler), and U.S. Patent No. 5,336,596 (nickel oxide filler). All provide good results. Unfortunately, as fuser rollers wear, the metal oxide fillers that are exposed react not only with the functionalized polymeric release agent, but also with the toner, paper substrate and charge control agent. Such reactions build up debris on the surface of the fuser roller, causing deterioration of toner release and great reduction in the life of the fuser roller. Thus, there remains a need for fuser members whose metal oxide fillers are made to enhance the interaction between elastomer and filler and also between the polymeric release agent and filler.
SUMMARY OF THE INVENTION
The present invention provides an effective way to solve the prob- lems described above. By filling a fluorocarbon elastomer with metal oxide particles treated with a coupling agent, the present invention provides a fuser member with the desired thermal conductivity and toner release properties.
More particularly, the invention provides a fuser member comprising a support and coated thereon a fluoroelastomer layer comprising a metal oxide filler selected from tin oxide, cupric oxide, and mixtures thereof, said filler having been treated with a silane coupling agent.
The present invention also provides a method of making a fuser member comprising the steps of a) providing a cylindrical core; b) compounding a fluoroelastomer with a metal oxide filler selected from tin oxide, cupric oxide, and mixtures thereof, the filler having been treated with a silane coupling agent; c) coating the fluoroelastomer on the cylindrical core; and d) curing the fuser member.
Metal oxide fillers which have been thus modified can interact with fluorocarbon polymers and bond with them. Such fillers also help to wet the surface and thereby facilitate compounding. The fuser member of the invention greatly improves fuser/toner release, toner offset on the roller surface and decreases abrasion of the fuser member overcoat. The invention provides an effective, durable fuser roller and high quality copies at high speed.
The toner/fuser release can be further improved by applying to the outermost layer of the fuser member an effective amount of a polymethyldi- siloxane (PDMS) release agent that, optionally, includes at least one functional group reactive with the fluoroelastomer, followed by incubation at an elevated temperature. While not wishing to be bound by the proposed theory, it is believed that the functional groups on the coupling agent bring about an interaction between filler and release fluid, thereby forming a protective layer between toner and filler.
An additional advantage is that this invention allows for a high percentage of metal oxide fillers in the fluoroelastomer and therefore high thermal conductivity can be achieved. At the same time, critical fuser properties such as release and wear are not sacrificed.
DETAILED DESCRIPTION OF THE INVENTION
The fluorocarbon elastomers used in the invention were prepared according to the method described in commonly owned US Serial No. 08/805,479 of Chen et al. filed February 25, 1997, titled TONER FUSER MEMBER HAVING A METAL OXIDE FILLED FLUOROELASTOMER OUTER LAYER WITH IMPROVED TONER RELEASE as follows.
In the fuser member of the present invention, the outermost layer comprises a cured fluoroelastomer, preferably a terpolymer of vinylidene fluoride (VF), tetrafluoroethylene (TFE), and hexafluoropropylene (HFP), that includes at least about 21 mole percent HFP and, preferably, at least about 50 mole percent VF. Among commercially available fluoroelastomers, Viton™ materials, obtainable from DuPont, are frequently employed for the fabrication of fuser members . These materials include Viton™ A , containing 25 mole percent HFP; Viton ™ E45, containing 23 mole percent HFP; and Viton ™ GF, containing 34 mole percent HFP.
A preferred fluoroelastomer for the outermost layer of the fuser member of the present invention is Fluorel ™ FX-9038, available from 3M, containing 52 mole percent VF, 34 mole percent TFE, and 14 mole percent HFP. More preferred is Fluorel™ FE-5840Q, also available from 3M, containing 53 mole percent VF, 26 mole percent TFE, and 21 mole percent HFP. At least 10 parts by weight of metal oxide per 100 parts by weight of cured fluoroelastomer are included in the outermost layer of the fuser member. The metal oxide may be cupric oxide, tin oxide, or mixtures thereof. In a preferred embodiment, 10 to 50 parts of cupric oxide are included in the outermost layer. Alumina may also be included as a thermally conductive filler in the layer; in one embodiment, 120 parts per 100 parts (by weight) of fluoroelastomer are incorporated.
The preferred silane coupling has the general structure:
Figure imgf000007_0001
wherein
M = aliphatic or aromatic chain with C atom numbers vary from 0-20. R = proton, phenyl or alkyl, etc.
Lj, L2, L3 = Alkoxy, alkyl, halide, etc. with C atom numbers vary from 0-10 and at least one of the L should be alkoxy or halide. X = negative counter ion, e.g. chloride ion, bromide ion, etc.
Suitable coupling agents are 3-aminopropyltrimethoxysilane, 3-aminopropyltriethoxysilane, N-phenylaminopropyltrimethoxysilane,
(aminoethylaminomethyl)phenethyltrimethoxysilane, aminophenyltrimeth- oxysilane, 3-aminopropyldimethoxysilane,
3-aminopropylmethyldiethoxysilane, 3-(2-aminoethylamino)propyl- trimethoxysilane, 3-(2-N-benzylaminoethylaminopropyl)trimethoxysilane hydrochloride, etc.
Although the fuser member of the invention, wherein the metal oxide particles have been treated with a coupling agent, exhibits generally good toner offset and release characteristics, these properties may be improved by applying a polydimethylsiloxane (PDMS) release agent to the outermost layer and incubating the fuser member to form a surface that displays enhanced toner release. Preferred PDMS release agents, which include a functional group that is reactive with the fluoroelastomer, have the formula
Figure imgf000008_0001
where R is alkyl or aryl, Z is selected from the group consisting of hydrogen, aminoalkyl containing up to about 8 carbon atoms, and mercaptoalkyl containing up to about 8 carbon atoms, and the ratio of a:b is about 1 : 1 to 3000: 1. In more preferred embodiments, Z is hydrogen, aminopropyl, or mercaptopropyl. In a particularly preferred embodiment, Z is hydrogen and the a:b ratio is about 10:1 to 200: 1. In another particularly preferred embodiment, Z is aminopropyl and the a:b ratio is about 200: 1 to 2,000: 1.
An example of a hydrogen-functionalized PDMS release agent is EKJPS- 124.5 (available from United Chemical), which contains 7.5 mole percent of the functionalized component and has a viscosity of 225 centistokes. Xerox amino-functionalized PDMS 8R3995 fuser agent II contains 0.055 mole percent of an aminopropyl-substituted component and has a viscosity of 300 centistokes. Xerox mercapto-functionalized PDMS 8R2955 contains 0.26 mole percent of a mercaptopropyl-substituted component and has a viscosity of 275 centistokes. A non-functionalized PDMS release oil, DC-200 (from Dow Corning), is useful for purposes of comparison with the functionalized agents and has a viscosity of 350 centistokes.
Materials
Fluorel™ FE Fluoroelastomer 5840Q, ter-polymer of vinylidene fluoride, hexafluoropropylene and tetrafluoroethylene (FE5840Q) — 3M, Co. MgO (Maglite™ D)— Merck/Calgon Corp. Ca(OH)2— Aldrich® SnO (CS3) — Magnesium Electron, Inc. CuO— J.T. Baker® 3-Aminopropyltriethoxylsilane (NCR) — PCR®
The invention is further illustrated by the following examples and comparative examples.
EXAMPLE 1 (E l)
Treatment of filler surface with coupling reagent solution:
Treatment solution was freshly prepared by adding aminopropyl- triethoxylsilane (2wt. ) to EtOH/H2O (95/5 by vol.) solvent and stirred for 10 minutes. Fillers (SnO or CuO or mixtures thereof) were covered by solution and stirred in ultrasonic bath for 10 minutes. Fillers were then washed twice with EtOH and dried under reduced pressure (under vacuum) at 150°C for 30 minutes and at room temperature overnight.
Compounding:
Fluorel™ FE5840Q (100 gm), MgO (3 gm), Ca(OH)2 (6 gm) and surface treated SnO2 --(138 gm) and CuO (50 gm)— were thoroughly compounded in a two roll mill with water cooling at 63°F (17°C) until a uniform, dry composite sheet was obtained.
Preparation of a compression mold slab:
The fluoroelastomer-treated fillers gum obtained as described above was compression molded into 75-mil plaques, with curing for 20 minutes at 350°F (177°C) under 45 tons pressure and post-curing for 48 hours at 450°F (232°C). The plaques were employed in tests to evaluate the toner offset and release characteristics, wear and thermal conductivity as described below and results are indicated in Table 1.
COMPARATIVE EXAMPLE 1 (C-l)
Substantially the same procedure as in Example 1 , except that the SnO2 and CuO fillers were not surface treated and the results are indicated in Table 1. COMPARATIVE EXAMPLE 2 (C-2) Substantially the same procedure as in Example 1 , except that the 138 parts SnO2 and 10 parts CuO fillers were not surface treated. The results are indicated in Table 1.
Test Methods for Results in Table 1
The four tests described immediately below were conducted using the plaques of Example 1 above. Results appear in Table 1.
Toner offset and release measurement
These procedures are described in US Serial No. 08/805,479 of Chen et al. filed February 25, 1997, titled TONER FUSER MEMBER HAVING A METAL OXIDE FILLED FLUOROELASTOMER OUTER LAYER WITH IMPROVED TONER RELEASE as follows.
The test plaques obtained as described above are employed to evaluate the toner offset and release force characteristics of the outermost layer of the fuser members. A plaque is cut into 1-inch (2.56-cm) squares. One of these squares is left untreated by release agent. To the surface of each of four squares is applied in unmeasured amount, one of the previously mentioned PDMS release oils: non-functionalized release oil DC-200 (PDMS); hydrogen-functionalized oil EK/PA- 124.5 (PDMS-H); Xerox amino-functionalized PDMS 8R79 (PDMS- NH2); and Xerox mercapto-functionalized PDMS 8R2955 (PDMS-SH).
Each sample was incubated overnight at a temperature of 175°C. Following this treatment, the surface of each sample was wiped with dichloro- methane. Each sample was then soaked in dichloromethane for one hour and allowed to dry before off-line testing for toner offset and release properties. Each sample, including those untreated with release agent, was tested in the following manner:
A 1-inch (2.56-cm) square of paper covered with unfused styrene- butyl acrylate toner was placed in contact with a sample on a bed heated to 175°C, and a pressure roller set for 80 psi was locked in place over the laminate to form a nip. After 20 minutes the roller was released from the laminate. The extent of offset for each sample was determined by microscopic examination of the sample surface following delamination. The following numerical evaluation, corresponding to the amount of toner remaining on the surface, was employed.
1 0% offset
2 1-20% offset
3 21 -50% offset
4 51-90% offset
5 91 -100% offset Qualitative assessment of the force required for delamination of the paper from the sample is as follows:
1 low release force
2 moderate release force
3 high release force
Wear measurement
A piece of plaque 9/16"x2" was cut for the wear test. A Norman abrader (by Norman Tool, Inc.) was used, and the temperature was set at 350°F. The speed was set at -30 cycles/minute and the load was set at 984 g.
Four rolls of paper were run on the plaque sample for 480 cycles each and the wear tracks were measured for depth by a surfanalyzer . The average of the four tracks was reported in mils.
Thermal Conductivity Measurement A round piece of plaque 5 cm diameter was cut for the test. Thermal conductivity was measured by Holometrix ™ TCA-100 Thermal Conductivity Analyzer. Reported values (BTU/hr-ft-°F) were from two stacks of samples.
Surface Energy analysis
Surface Energy was measured by AST products VCA-2500XE Surface energy analyzer. Polar and dispersive forces were measured using water and diiodomethane, respectively. The total force (dynes/cm2) was reported. TABLE 1.
FE5840Q lOOpt with MgO/Ca(OH)2 (3:6)
Figure imgf000012_0001
NCR— 3-Aminopropyltriethoxysilane
The results show that wear and surface energy were significantly better for the sample with treated filler than for the sample with untreated filler.
The invention has been described in detail with particular reference to certain preferred embodiments thereof, but it will be understood that variations and modifications can be effected within the spirit and scope of the invention.

Claims

WHAT IS CLAIMED IS:
1. A fuser member comprising: a support; an optional base cushion layer; and a fluoroelastomer layer comprising a metal oxide filler selected from tin oxide, cupric oxide, and mixtures thereof, said filler having been treated with a silane coupling agent having a reactive functional group.
2. The fuser member of claim 1 wherein the base cushion layer comprises silicone rubber.
3. The fuser member of claim 1 wherein the base cushion layer contains a thermally conductive filler.
4. The fuser member of claim 1 further comprising an adhesion layer between the base cushion layer and the fluoroelastomer layer.
5. The fuser member of claim 1 wherein the fluoroelastomer comprises:
-(CH2CF2)X; -(CF2CF2)y; and
Figure imgf000013_0001
where x is from 30 to 90 mole percent, y is from 10 to 70 mole percent, and z is from 0 to 30 mole percent.
6. The fuser member of claim 5, wherein x is 52 mole percent, y is 34 mole percent, and z is 14 mole percent.
7. The fuser member of claim 5, wherein x is 53 mole percent, y is 26 mole percent, and z is 21 mole percent.
8. The fuser member of claim 1 wherein the tin oxide is 30 to 280 parts by weight per 100 parts by weight of the fluoroelastomer.
9. The fuser member of claim 1 wherein the cupric oxide is 10 to 50 parts by weight per 100 parts by weight of the fluoroelastomer.
10. The fuser member of claim 1 wherein the silane coupling agent has the structure:
Figure imgf000014_0001
wherein
M-aliphatic or aromatic chain with C atom numbers vary from 0-20. R-proton, phenyl or alkyl, etc.
LI, L2, L3-Alkoxy, alkyl, halide, etc. with C atom numbers vary from 0-10 and at least one of the L should be alkoxy or halide.
XΓÇö negative counter ion, e.g. chloride ion, bromide ion, etc.
PCT/US1998/021774 1997-10-31 1998-10-13 FUSER MEMBER WITH SURFACE TREATED SnO2 FILLER WO1999023535A1 (en)

Priority Applications (3)

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EP19980953549 EP1027631B1 (en) 1997-10-31 1998-10-13 Fuser member with surface treated metal oxide filler
DE1998615878 DE69815878T2 (en) 1997-10-31 1998-10-13 MELTING DEVICE WITH SURFACE-TREATED METAL OXIDE FILLER
JP2000519330A JP2001522067A (en) 1997-10-31 1998-10-13 Fused member having surface-treated SnO2 filler

Applications Claiming Priority (2)

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US08/962,108 1997-10-31
US08/962,108 US5935712A (en) 1997-10-31 1997-10-31 Fuser member with surface treated SnO2, CuO, or mixture filler

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WO1999023535A1 true WO1999023535A1 (en) 1999-05-14

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PCT/US1998/023146 WO1999023180A1 (en) 1997-10-31 1998-10-29 Polyurethane adhesive/sealant remover

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CA2308304C (en) 2008-01-08
DE69815878D1 (en) 2003-07-31
DE69815878T2 (en) 2003-12-18
US5935712A (en) 1999-08-10
WO1999023180A1 (en) 1999-05-14
EP1027631B1 (en) 2003-06-25
AU1293899A (en) 1999-05-24
EP1027631A1 (en) 2000-08-16
JP2001522067A (en) 2001-11-13

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