Claims
- 1. An electrolysis cell, comprising:a housing having an anode chamber configured to receive and circulate a liquid organic fuel and a cathode chamber configured to collect hydrogen gas generated from electrolysis of the organic fuel; a solid electrolyte membrane having a anode and a cathode membrane surfaces, said membrane disposed in said housing and configured to partition said housing into said anode and cathode chambers, said membrane operable to conduct protons and exchange cations; an anode electrode formed on said anode membrane surface to interconnect said membrane and said anode chamber, said anode electrode operable to facilitate electro-oxidation of the organic fuel to generate protons; a cathode electrode formed on said cathode membrane surface to interconnect said membrane and said cathode chamber for electro-reduction of the protons to produce the hydrogen gas; and a DC power supply connected to said anode and cathode electrodes and operable to supply electrical power to said electro-oxidation and electro-reduction.
- 2. The electrolysis cell of claim 1 wherein said solid electrolyte membrane comprises a polymer material.
- 3. The electrolysis cell of claim 2 wherein said polymer material includes a perfluorinated proton-exchange membrane material.
- 4. The electrolysis cell of claim 3 wherein said polymer material includes a co-polymer of tetrafluoroethylene and perfluorovinylether sulfonic acid.
- 5. The electrolysis cell of claim 2 wherein said polymer material includes a modified perfluorinated sulfonic acid polymer or polyhydrocarbon sulfonic acid.
- 6. The electrolysis cell of claim 2 wherein said polymer material includes a carboxylic acid, polystyrene sulfonic acid (“PSSA”), or poly(vinylidene fluoride) (“PVDF”).
- 7. The electrolysis cell of claim 1 wherein said solid electrolyte membrane has a thickness in a range between about 0.05 mm and about 0.5 mm.
- 8. The electrolysis cell of claim 1 wherein said solid electrolyte membrane has a ionic conductivity greater than about 1 ohm−1 cm−1.
- 9. The electrolysis cell of claim 1 wherein said anode electrode includes an anode catalyst, a proton-conducting sonomer, and a hydrophobic additive.
- 10. The electrolysis cell of claim 9 wherein said anode catalyst includes platinum.
- 11. The electrolysis cell of claim 10 wherein said anode catalyst further includes ruthenium.
- 12. The electrolysis cell of claim 11 wherein said anode catalyst further includes titanium dioxide, rhodium, iridium, or osmium.
- 13. The electrolysis cell of claim 10 wherein said anode catalyst further includes tin, iridium, osmium, or rhenium.
- 14. The electrolysis cell of claim 9 wherein said anode catalyst is applied with a loading approximately from 0.1 mg/cm2 to 4.0 mg/cm2.
- 15. The electrolysis cell of claim 9 wherein said anode catalyst includes palladium, tungsten, rhodium, iron, cobalt, nickel, molybdenum (MoO3), niobium (Nb2O5), or zirconium (ZbO2).
- 16. The electrolysis cell of claim 1 wherein said cathode electrode includes a cathode catalyst, a proton-conducting sonomer, and a hydrophobic additive.
- 17. The electrolysis cell of claim 16 wherein said cathode catalyst includes platinum.
- 18. The electrolysis cell of claim 9 or claim 16, wherein said proton-conducting sonomer includes a copolymer of tetrafluoroethylene and perfluorovinyl ether sulfonic aid.
- 19. The electrolysis cell of claim 9 or claim 16, wherein said hydrophobic additive includes a tetrafluoroethylene fluorocarbon polymer.
- 20. The electrolysis cell of claim 1, wherein said DC power supply includes a solar cell.
- 21. The electrolysis cell of claim 1 wherein said organic fuel includes methanol, dimethoxymethane, dimethoxymethane, trimethoxymethane, trioxane, formaldehyde, or formic acid.
- 22. The electrolysis cell of claim 1, further comprising a hydrogen purification device connected to said cathode chamber to receive the hydrogen gas, said hydrogen purification device adapted to operate to remove liquid from hydrogen gas.
- 23. An electrical system, comprising:an electrolysis unit having an electrolysis cell which comprises a solid-state polymer electrolyte membrane, an anode and a cathode formed on opposing surfaces of said membrane, an anode chamber configured to receive and circulate a liquid organic fuel, and a cathode chamber configured to collect hydrogen gas generated from electrolysis of the organic fuel; and an electrical power generating unit connected to said electrolysis unit and configured to receive said hydrogen gas from said electrolysis unit, said electrical power generating unit having a hydrogen fuel cell which consumes said hydrogen gas and produces electrical power.
- 24. A system as in claim 23, further comprising an electrically-driven device connected to said electrical power generating unit and configured to receive said electrical power therefrom.
- 25. A system as in claim 24, wherein said electrically-driven device is an electrical motor.
Parent Case Info
This is a divisional of U.S. application Ser. No. 09/506,170, filed Feb. 17, 2000, which is a divisional of application Ser. No. 09/123,957 filed Jul. 28, 1998, now U.S. Pat. No. 6,299,744, which is a continuation of U.S. application Ser. No. 08/926,947 filed Sep. 10, 1997 now abandoned.
ORIGIN OF THE INVENTION
The invention described herein was made in the performance of work under a NASA contract and is subject to the provisions of Public Law 96-517 (35 U.S.C. 202) in which the Contractor has elected to retain title.
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Continuations (1)
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08/926947 |
Sep 1997 |
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09/123957 |
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