Claims
- 1. A membrane electrode assembly for use in an associated direct oxidation fuel cell, comprising:
(A) a protonically conductive, electronically non-conductive membrane electrolyte, having an anode aspect and a cathode aspect; (B) an anode catalyst disposed in contact with said anode aspect of the protonically conductive, electronically non-conductive membrane electrolyte; (C) a cathode catalyst that is suitable for oxygen electro-reduction reactions being disposed in contact with said cathode aspect of the protonically conductive, electronically non-conductive membrane electrolyte; (D) a hydrophobic microporous layer and a cathode backing layer, in proximity to said cathode catalyst such that effective confinement and redirection of water produced in said reactions across the protonically-conductive membrane is achieved for complete anodic oxidation, without any external supply or external redirection of water; and (E) an anode diffusion layer that is in contact with the anode catalyst on membrane electrolyte.
- 2. The membrane electrode assembly as defined in claim 1 wherein said protonically-conductive membrane is a thin ionomeric membrane, at least as thin as 50 micrometers, to achieve higher flux of water flow from the cathode aspect back to the anode aspect through the membrane at given water repelling characteristics of the microporous layer.
- 3. The membrane electrode assembly as defined in claim 2 wherein said predetermined water repelling characteristics are sufficient to allow a supply of 100% methanol to the anode through a pervaporation membrane, or by other means of controlled dosing of 100% methanol to said anode aspect.
- 4. The membrane electrode assembly as set forth in claim 1 wherein the protonically conductive, electronically non-conductive membrane electrolyte is comprised of polyperfluorosulfonic acid.
- 5. The membrane electrode assembly as set forth in claim 1 wherein the protonically conductive, electronically non-conductive membrane electrolyte is comprised of NAFION®.
- 6. The membrane electrode assembly as set forth in claim 1 wherein the protonically conductive, electronically non-conductive membrane electrolyte is comprised of NAFION® with a thickness of less than 0.007 inches.
- 7. The membrane electrode assembly as set forth in claim 1 wherein the protonically conductive, electronically non-conductive membrane electrolyte is comprised of NAFION® with a thickness of between 0.002 and 0.007 inches.
- 8. The membrane electrode assembly as set forth in claim 1 wherein the anode catalyst is comprised of a supported or unsupported alloy of platinum and ruthenium.
- 9. The membrane electrode assembly as set forth in claim 1 wherein the cathode catalyst is comprised of supported or unsupported platinum.
- 10. The membrane electrode assembly as set forth in claim 1 wherein the cathode backing is a cathode diffusion layer that is substantially comprised of one or more sheets of carbon paper or carbon cloth.
- 11. The membrane electrode assembly as set forth in claim 10 wherein said hydrophobic microporous layer is substantially comprised of high surface area carbon particles intermixed with PTFE.
- 12. The membrane electrode assembly as set forth in claim 11 wherein said microporous layer includes micropores of a diameter of between about 1.0 μm and 0.1 μm.
- 13. The membrane electrode assembly as set forth in claim 11 wherein the micropores of said cathode backing layer are selected to achieve a permeability of water driven across the protonically conductive membrane by hydrostatic pressure of about 5 μg/(s cm2 atm).
- 14. The membrane electrode assembly as defined in claim 10 wherein said cathode backing is of a thickness and porosity to achieve a water vapor escaping rate away from the membrane electrode assembly which is smaller than the water production rate of the associated fuel cell reactions.
- 15. The membrane electrode assembly as set forth in claim 10 wherein an additional layer of PTFE is applied to the aspect of the cathode backing layer opposite the said microporous layer
- 16. The membrane electrode assembly as set forth in claim 10 wherein said microporous layer is comprised of at least 50% PTFE by weight.
- 17. The membrane electrode assembly as set forth in claim 10 wherein said microporous layer is comprised of at least 60% PTFE by weight.
- 18. The membrane electrode assembly as set forth in claim 1 further comprising an enhanced PTFE percentage of 50-60% in the cathode microporous layer to achieve improved water repelling characteristics.
- 19. The membrane electrode assembly as defined in claim 1 further comprising said microporous layer being laminated onto said cathode catalyst by lamination techniques such as steam pressing techniques.
- 20. The membrane electrode assembly as set forth in claim 1 wherein the anode diffusion layer is comprised of one or more sheets of carbon paper or carbon cloth.
- 21. The membrane electrode assembly as set forth in claim 1 wherein the anode diffusion layer is highly hydrophilic.
- 22. The membrane electrode assembly as set forth in claim 1 wherein the aspect of the anode diffusion layer which is in contact with the membrane electrolyte further comprises features which encourage the elimination of anodically generated gas.
- 23. The membrane electrode assembly as set forth in claim 1 wherein the aspect of the anode diffusion layer which is in contact with the membrane electrolyte further comprising means for encouraging the lateral transport of anodically generated gas away from the anode aspect of the membrane electrode assembly.
- 24. The membrane electrode assembly as set forth in claim 1 wherein the fuel is delivered to the anode through a fuel permeable material.
- 25. The membrane electrode assembly as set forth in claim 24 wherein the fuel permeable, gas impermeable material is a polymer.
- 26. The membrane electrode assembly as set forth in claim 24 wherein the fuel permeable material is at least partially comprised of silicone.
- 27. The membrane electrode assembly as set forth in claim 24 wherein the fuel permeable material is at least partially comprised of NAFION®.
- 28. The membrane electrode assembly as set forth in claim 24 wherein the fuel permeable material is a porous, solid plate.
- 29. The membrane electrode assembly as defined in claim 1 wherein said protonically conductive membrane is a membrane of intrinsic protonic conductivity.
- 30. A direct oxidation fuel cell, comprising: <
(A) a membrane electrolyte intimately interfacing with a catalyst layer along each of membrane's major surfaces, being a catalyzed membrane electrolyte, having an anode aspect and a cathode aspect; (B) an anode catalyst is disposed in contact with an anode aspect of the protonically conductive, electronically non-conductive membrane electrolyte; (C) a cathode catalyst that is suitable for oxygen electro-reduction reactions which is disposed in contact with a cathode aspect of the protonically conductive, electronically non-conductive membrane electrolyte; (D) a hydrophobic cathode backing layer that drives water produced in said reactions across the protonically-conductive membrane electrolyte towards said anode aspect, said cathode backing layer being disposed generally adjacent the cathode catalyst of the membrane electrolyte; (E) an anode diffusion layer that is contact with the anode catalyst on membrane electrolyte; and (F) a load coupled across said fuel cell.
- 31. The direct oxidation fuel cell as defined in claim 30 further comprising a hydrophilic anode diffusion layer
- 32. The direct oxidation fuel cell as defined in claim 30 wherein said membrane electrolyte includes a membrane of intrinsic protonic conductivity.
- 33. A direct oxidation fuel cell system comprised of:
(A) a membrane electrode assembly including:
i. a protonically conductive, electronically non-conductive membrane electrolyte; ii. an anode catalyst that is disposed in contact with an anode aspect of the protonically conductive membrane electrolyte; iii. a cathode catalyst that is suitable for oxygen electro reduction reactions which is disposed in contact with a cathode aspect of the protonically conductive, electronically non-conductive membrane electrolyte; iv. a hydrophobic cathode backing layer that drives water produced in said reactions across the protonically-conductive electronically non-conductive membrane electrolyte towards said anode aspect, said cathode backing layer being disposed generally adjacent the cathode catalyst of the membrane electrolyte that; and v. an anode diffusion layer that is contact with the protonically conductive, membrane electrolyte; (B) a housing; (C) a means by which electrical connections can be made; (D) a means by which fuel can be introduced to the fuel cell; (E) a fuel source; and (F) an oxygen source.
- 34. The direct oxidation fuel cell system of claim 33, further comprised of a filter disposed between the cathode diffusion layer and the oxygen source.
- 35. The direct oxidation fuel cell system of claim 33, wherein the oxygen source is ambient air.
- 36. The direct oxidation fuel cell system as defined in claim 33 wherein said protonically conductive membrane is a membrane of intrinsic protonic conductivity.
- 37. A membrane electrode assembly for use in a direct oxidation fuel cell, comprising:
(A) an intrinsically protonically conducting membrane; (B) an anode catalyst that is disposed in contact with an anode aspect of the intrinsically protonically conducting membrane; (C) a cathode catalyst that is suitable for oxygen electro reduction reactions which is disposed in contact with a cathode aspect of the intrinsically protonically conducting membrane; (D) a hydrophobic cathode backing layer that drives water produced in said reactions across the intrinsically protonically conducting membrane towards said anode aspect, said cathode backing layer being disposed generally adjacent the cathode catalyst; and (E) an anode diffusion layer that is contact with the intrinsically protonically conducting membrane.
CROSS-REFERENCE TO RELATED APPLICATION
[0001] This application is a Continuation-in-Part of prior application Ser. No. 10/413,983, filed Apr. 15, 2003, by Ren et al. for a DIRECT OXIDATION FUEL CELL OPERATING WITH DIRECT FEED OF CONCENTRATED FUEL UNDER PASSIVE WATER MANAGEMENT.
Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
10413983 |
Apr 2003 |
US |
Child |
10454211 |
Jun 2003 |
US |