Claims
- 1. A process of preparing a supported, infusible, substantially insoluble, catalyst of a perfluorocarbon polymer containing pendant acid groups, which comprises:
- first, coating a solid substrate with a thin film of an intermediate perfluorocarbon polymer containing pendant groups which are convertible to acid groups having an equivalent weight of at least 900,
- and second, converting only the surface layer of said pendant groups of said intermediate in said coating into acid groups, thereby obtaining a composite of said infusible, substantially insoluble acid polymer catalyst bound to said supporting substrate by unconverted polymer.
- 2. A process of preparing a supported, infusible, substantially insoluble, catalyst of a perfluorocarbon polymer containing pendant sulfonic acid groups, which comprises:
- first, coating a solid substrate with a thin film of an intermediate perfluorocarbon polymer containing pendant sulfonyl fluoride groups or sulfonate salts of quaternary ammonium or phosphonium, corresponding to perfluorocarbon polymers containing pendant sulfonic acid groups having an equivalent weight of at least 900,
- and second, converting part of said pendant sulfonyl fluoride or sulfonate groups in said coating into sulfonic acid groups, thereby obtaining a substantially insoluble composite of said sulfonic acid polymer catalyst bound to said supporting substrate by unconverted intermediate polymer.
- 3. The process of claim 2 wherein said coating is formed by melt deposition of a fusible perfluorocarbon polymer containing pendant sulfonyl fluoride groups.
- 4. The process of claim 3 wherein said perfluorosulfonyl fluoride polymer is extruded onto said substrate to form a coating of 0.1 to 2.0 mils in thickness.
- 5. The process of claim 2 wherein said intermediate perfluorocarbon polymer contains pendant sulfonyl fluoride or sulfonate groups corresponding to a equivalent weight of 1100 to 1500 in the sulfonic acid form.
- 6. The process of claim 2 wherein said intermediate polymer is shaped by extrusion or coating as a thin film onto a metal surface.
- 7. The process of claim 2 wherein said intermediate polymer has an average molecular weight of 1,000 to 500,000 daltons.
- 8. The catalyst prepared by the method of claim 2.
- 9. A solid polymeric acid catalyst composite consisting essentially of a solid substrate and thereon a thin film coating of 0.1 to 10 mils thick, of fusible solid perfluorocarbon polymer containing pendant groups which are convertable to acid groups, the surface layer of said polymer coating having been converted to an infusible solid perfluorocarbon polymer containing pendant acid groups and equivalent weight of at least 900, the unconverted portion of said coating binding said acid polymer layer to said substrate.
- 10. A supported solid polymeric acid catalyst composite consisting essentially of (1) a solid impermeable substrate, (2) a thin film coating, of 0.1 to 10 mils thick, of a substantially insoluble infusible solid perfluorocarbon polymer containing pendant sulfonic acid groups and having an equivalent weight of at least 900 and (3) a fusible solid perfluorocarbon polymer containing pendant sulfonyl fluoride groups between said acid polymer thin film and said substrate and binding said acid polymer thin film to said substrate.
- 11. The solid polymer acid catalyst composite of claim 9 adapted for carrying out highly exothermic reactions under controlled conditions, wherein said thin film is 0.1 to 2 mils thick and adapted for contact with the reactants and wherein said substrate is a heat exchanger element adapted for contact on the opposite side from thin film coating with a coolant for removing heat of reaction.
- 12. The catalyst of claim 9, wherein said thin film has a molecular weight of 50,000 to 100,000 daltons.
- 13. The solid polymeric acid catalyst of claim 9 wherein the supporting substrate is a non-catalytic solid polymer.
- 14. The catalyst of claim 9 wherein the supporting substrate is a metallic or inorganic solid substrate.
- 15. The catalyst of claim 14, wherein said support is heat conductive metal.
Parent Case Info
This patent application is a continuation-in-part of U.S. Ser. No. 970,475, filed Dec. 18, 1978 and now abandoned, of U.S. Ser. No. 660,634, filed Feb. 23, 1976, and of U.S. Ser. No. 132,149, filed Mar. 20, 1980 (which is a continuation-in-part of U.S. Ser. No. 970,474, filed Dec. 18, 1978 and now abandoned), all in the name of Ronald J. Vaughan.
US Referenced Citations (10)
Non-Patent Literature Citations (7)
Entry |
"Innovation", vol. 4, No. 3 (Spring 1973) pp. 10-13, Pub. by DuPont. |
Grot et al. "Perfluorinated Ion Exchange Members", paper presented to 141st National Meeting, The Electrochemical Soc., May, 1972. |
"Nafion Perfluorosulfonic Acid Products", a Du Pont brochure, Feb. 1976. |
"Nafion Perfluorosulfonic Acid Membranes for Use in Chlorine and Caustic Soda Production Systems", a Du Pont brochue, Aug. 1977. |
"The Commercialization of Ion Exchange Membranes to Produce Chlorine and Caustic Soda", paper presented at the Electrochemical Soc. Fall Meeting, Oct. 1977. |
"Prediction of the Molecular Structure of Nafion under Different Physicochemical Conditions", paper presented at Electrochemical Soc. Fall Meeting, Oct. 1977. |
Ukihashi, "A Membrane for Electrolysis", Chemtech, Feb. 1980, pp. 118-120. |
Related Publications (2)
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Number |
Date |
Country |
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660634 |
Feb 1976 |
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132149 |
Mar 1980 |
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Continuation in Parts (2)
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Number |
Date |
Country |
Parent |
970475 |
Dec 1978 |
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Parent |
970474 |
Dec 1978 |
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