Claims
- 1. A fuel cell, comprising:
an anode region adapted to receive a hydrogen stream; a cathode region adapted to receive a stream containing oxygen; and an electrolytic barrier separating the anode region from the cathode region, wherein the electrolytic barrier includes an acidic or basic non-aqueous electrolyte, wherein the non-aqueous electrolytic has an acid ionization constant (Ka) greater than 5×10−6 at 25° C. if the non-aqueous electrolyte is an acid and a base ionization constant (Kb) greater than 5×10−6 25° C. if the non-aqueous electrolyte is a base; and further wherein the fuel cell has an operating temperature of less than 300° C.
- 2. The fuel cell of claim 1, wherein the non-aqueous electrolyte is an acid.
- 3. The fuel cell of claim 1, wherein the non-aqueous electrolyte is a base.
- 4. The fuel cell of claim 1, wherein the non-aqueous electrolyte includes an organic ionic liquid.
- 5. The fuel cell of claim 1, wherein the non-aqueous electrolyte includes sulfuric acid.
- 6. The fuel cell of claim 1, wherein the non-aqueous electrolyte includes a mixture of a solvent combined with an acidic or basic solute.
- 7. The fuel cell of claim 6, wherein the solvent includes an organic ionic liquid.
- 8. The fuel cell of claim 6, wherein the solvent is selected from the group consisting of: a hydrocarbon, a polyalcohol, a polyether, an organic ionic liquid, and an organic liquid with a normal boiling point greater than 90° C.
- 9. The fuel cell of claim 6, wherein the solvent is selected from the group consisting of: hexadecane, decane, kerosene, propylene carbonate, propylene glycol, o-dichlorobenzene, and 1,3,5-tiichlorobenzene.
- 10. The fuel cell of claim 6, wherein the acidic solute is selected from the group consisting of: hydrogen hexafluorophosphate, hydrogen tetraphynylborate, sulfuric acid, and perchloric acid.
- 11. The fuel cell of claim 6, wherein the basic solute is a tetraalkylammonium hydroxide.
- 12. The fuel cell of claim 1, wherein the non-aqueous electrolyte has a Ka greater than 1×10−2 at 25° C. if the electrolyte is an acid and a Kb greater than 1×10 −2 25° C. if the electrolyte is a base.
- 13. The fuel cell of claim 1, wherein the non-aqueous electrolyte has a Ka greater than 1×10−4 at 25° C. if the electrolyte is an acid and a Kb greater than 1×10−4 25° C. if the electrolyte is a base.
- 14. The fuel cell of claim 1, wherein the non-aqueous electrolyte contains less than 5% water on a molar basis.
- 15. The fuel cell of claim 1, wherein the boiling point of the non-aqueous electrolyte is at least 90° C.
- 16. The fuel cell of claim 1, wherein the boiling point of the non-aqueous electrolyte is at least 130° C.
- 17. The fuel cell of claim 1, wherein the boiling point of the non-aqueous electrolyte is at least 150° C.
- 18. The fuel cell of claim 1, wherein the melting point of the non-aqueous electrolyte is less than 5° C.
- 19. The fuel cell of claim 1, wherein the melting point of the non-aqueous electrolyte is less than 0° C.
- 20. The fuel cell of claim 1, wherein the operating temperature of the fuel cell is between 0° C. and 300° C.
- 21. The fuel cell of claim 1, wherein the operating temperature of the fuel cell is between 15° C. and 200° C.
- 22. The fuel cell of claim 1, wherein the operating temperature of the fuel cell is between 15° C. and 150° C.
- 23. The fuel cell of claim 1, wherein the operating temperature of the fuel cell is between 0° C. and 100° C.
- 24. The fuel cell of claim 1, wherein the operating temperature of the fuel cell is above 100° C.
- 25. The fuel cell of claim 1, wherein the operating temperature of the fuel cell is between 150° C. and 300° C.
- 26. The fuel cell of claim 1, wherein the operating temperature of the fuel cell is above the boiling point of water at the operating conditions of the fuel cell.
- 27. A fuel cell system, comprising:
a fuel processor comprising:
a hydrogen-producing region adapted to receive a feed stream that includes a carbon-containing feedstock and to produce therefrom a mixed gas stream containing hydrogen gas and other gasses; and a separation region adapted to receive the mixed gas stream and to separate the mixed gas stream into an at least substantially pure hydrogen stream and a byproduct stream containing substantially the other gasses; a fuel cell stack containing at least one fuel cell comprising:
an anode region adapted to receive at least a portion of the at least substantially pure hydrogen stream; a cathode region adapted to receive a stream containing oxygen; and an electrolytic barrier separating the cathode region and the anode region, wherein the electrolytic barrier includes a non-aqueous electrolyte that is either acidic or basic, and further wherein the non-aqueous electrolyte has a Ka greater than 5×10−6 at 25° C. if the non-aqueous electrolyte is acidic, or a Kb greater than 5×10−6 25° C. if the non-aqueous electrolyte is basic.
- 28. The fuel cell system of claim 27, wherein the separation region includes at least one hydrogen-selective membrane.
- 29. The fuel cell system of claim 27, wherein the hydrogen-producing region includes a reforming region containing a reforming catalyst.
- 30. The fuel cell system of claim 27, wherein the fuel processor includes a polishing catalyst bed adapted to increase the purity of the at least substantially pure hydrogen stream prior to delivery of the stream to the fuel cell stack.
- 31. The fuel cell system of claim 27, wherein the non-aqueous electrolyte has a Ka greater than 1×10−2 at 25° C. if the electrolyte is acidic and a Kb greater than 1×10−2 at 25° C. if the electrolyte is basic.
- 32. The fuel cell system of claim 27, wherein the non-aqueous electrolyte has a Ka greater than 1×104 at 25° C. if the electrolyte is acidic and a Kb greater than 1×10−4 25° C. if the electrolyte is basic.
- 33. The fuel cell system of claim 27, wherein the non-aqueous electrolyte is an acid.
- 34. The fuel cell system of claim 27, wherein the non-aqueous electrolyte is a base.
- 35. The fuel cell system of claim 27, wherein the non-aqueous electrolyte includes an organic ionic liquid.
- 36. The fuel cell system of claim 27, wherein the non-aqueous electrolyte includes a mixture of a solvent combined with an acidic or basic solute.
- 37. The fuel cell system of claim 27, wherein the solvent includes an organic ionic liquid.
- 38. The fuel cell system of claim 27, wherein the non-aqueous electrolyte contains less than 5% water on a molar basis.
- 39. The fuel cell system of claim 27, wherein the boiling point of the non-aqueous electrolyte is at least 90° C.
- 40. The fuel cell system of claim 27, wherein the boiling point of the non-aqueous electrolyte is at least 130° C.
- 41. The fuel cell system of claim 27, wherein the boiling point of the non-aqueous electrolyte is at least 150° C.
- 42. The fuel cell system of claim 27, wherein the melting point of the non-aqueous electrolyte is less than 5° C.
- 43. The fuel cell system of claim 27, wherein the melting point of the non-aqueous electrolyte is less than 0° C.
- 44. The fuel cell system of claim 27, wherein the operating temperature of the fuel cell is between 0° C. and 300° C.
- 45. The fuel cell system of claim 27, wherein the operating temperature of the fuel cell is between 15° C. and 200° C.
- 46. The fuel cell system of claim 27, wherein the operating temperature of the fuel cell is between 15° C. and 150° C.
- 47. The fuel cell system of claim 27, wherein the operating temperature of the fuel cell is between 15° C. and 100° C.
- 48. The fuel cell system of claim 27, wherein the operating temperature of the fuel cell is above 100° C.
- 49. The fuel cell system of claim 27, wherein the operating temperature of the fuel cell is between 150° C. and 300° C.
- 50. The fuel cell system of claim 27, wherein the operating temperature of the fuel cell is above the boiling point of water at the operating conditions of the fuel cell.
- 51. A fuel cell system, comprising:
a source of an anode feedstock, wherein the anode feedstock includes at least one composition that contains chemically bound hydrogen and which liberates protons at an anode of a fuel cell; a fuel cell stack adapted to receive a stream containing the anode feedstock and containing at least one fuel cell comprising:
an anode region adapted to receive at least a portion of the stream containing the anode feedstock; a cathode region adapted to receive a stream containing oxygen; and an electrolytic barrier separating the cathode region and the anode region, wherein the electrolytic barrier includes a non-aqueous electrolyte that is either acidic or basic, and further wherein the non-aqueous electrolyte has a Ka greater than 5×10−6 at 25° C. if the non-aqueous electrolyte is acidic, or a Kb greater than 5×10−6 25° C. if the non-aqueous electrolyte is basic.
- 52. The fuel cell system of claim 51, wherein the anode feedstock includes hydrogen gas.
- 53. The fuel cell system of claim 51, wherein the anode feedstock includes methanol.
- 54. The fuel cell system of claim 51, wherein the anode feedstock includes hydrazine.
- 55. The fuel cell system of claim 51, wherein the anode feedstock includes formaldehyde.
- 56. The fuel cell system of claim 51, wherein the anode feedstock includes ethanol.
- 57. The fuel cell system of claim 51, wherein the source includes a storage tank.
- 58. The fuel cell system of claim 51, wherein the source includes a device adapted to produce the anode feedstock through a chemical reaction.
- 59. The fuel cell system of claim 51, wherein the source includes a fuel processor and the anode feedstock is at least substantially pure hydrogen gas.
- 60. The fuel cell system of claim 59, wherein the fuel processor is a steam reformer that includes a reforming catalyst.
- 61. The fuel cell system of claim 59, wherein the fuel processor is adapted to produce the anode feedstock by partial oxidation of a carbon-containing feedstock.
- 62. The fuel cell system of claim 59, wherein the fuel processor is adapted to produce the anode feedstock by electrolysis of water.
- 63. The fuel cell system of claim 59, wherein the fuel processor is adapted to produce the anode feedstock by irradiation of a carbon-containing feedstock.
- 64. A fuel cell system, comprising:
a fuel processor comprising:
a hydrogen-producing region adapted to receive a feed stream that includes a carbon-containing feedstock and to produce therefrom a mixed gas stream containing hydrogen gas and other gasses; and a separation region adapted to receive the mixed gas stream and to separate the mixed gas stream into an at least substantially pure hydrogen stream and a byproduct stream containing substantially the other gasses; a fuel cell stack containing at least one fuel cell comprising:
an anode region adapted to receive at least a portion of the at least substantially pure hydrogen stream; a cathode region adapted to receive a stream containing oxygen; and electrolytic means for separating the anode and the cathode regions.
RELATED APPLICATION
[0001] This application claims priority to co-pending U.S. Provisional Patent Application Ser. No. 60/208,880, which was filed on Jun. 1, 2000, is entitled “Fuel Cell and Electrolytes Therefore,” and the complete disclosure of which is hereby incorporated by reference for all purposes.
Provisional Applications (1)
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Number |
Date |
Country |
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60208880 |
Jun 2000 |
US |