Claims
- 1. An integral solid oxide fuel cell for electrochemically reacting a fuel gas with an oxidant gas at an elevated temperature to produce a DC output voltage, said solid oxide fuel cell comprising:
a layer of ceramic ion conducting electrolyte defining first and second opposing surfaces; a conductive anode layer in contact with the first surface of said electrolyte layer; and a conductive cathode layer in contact with the second surface of said electrolyte layer;
wherein said electrolyte layer is disposed between said anode layer and said cathode layer; wherein said conductive anode layer comprises a cerium-modified doped strontium titanate material; wherein the cerium-modified doped strontium titanate material comprises an A-site dopant selected from the group consisting of lanthanum, scandium, yttrium and combinations thereof; and wherein cerium is present in the cerium-modified doped strontium titanate material in an amount of at least about 2 atomic percent.
- 2. The fuel cell in accordance with claim 1 wherein said cerium is present in the cerium-modified doped strontium titanate material in an amount of at least about 5 atomic percent.
- 3. The fuel cell in accordance with claim 1 wherein the A-site dopant comprises lanthanum.
- 4. The fuel cell in accordance with claim 3 wherein lanthanum dopant is present in the cerium-modified doped strontium titanate material in an amount of from about 10 atomic percent to about 40 atomic percent and cerium is present in the cerium-modified doped strontium titanate material in an amount up to about 80 atomic percent.
- 5. The fuel cell in accordance with claim 3 wherein the cerium-modified doped strontium titanate material further comprises at least one member selected from the group consisting of nickel, cobalt, copper, chromium and iron.
- 6. The fuel cell in accordance with claim 1 wherein the cerium-modified doped strontium titanate has thermal expansion characteristics that correspond to thermal expansion characteristics of the electrolyte layer.
- 7. The fuel cell in accordance with claim 1 wherein the cerium-modified doped strontium titanate has a coefficient of thermal expansion of from about 8×10−6 to about 13×10−6 K−1.
- 8. The fuel cell in accordance with claim 1 wherein the cerium-modified doped strontium titanate anode exhibits a polarization resistance of about 0.2 Ωcm2 at 850° C. and a polarization resistance of about 1.3 Ωcm2 at 700° C. in wet hydrogen versus Pt/air.
- 9. The fuel cell in accordance with claim 1 wherein said fuel cell is a planar fuel cell.
- 10. The fuel cell in accordance with claim 1 wherein said fuel cell is incorporated in a fuel cell stack assembly including a plurality of solid oxide fuel cells.
- 11. The fuel cell in accordance with claim 1 wherein the cerium-modified doped strontium titanate material is in contact with the electrolyte layer.
- 12. The fuel cell in accordance with claim 1 wherein the cerium-modified doped strontium titanate material comprises a layer having a thickness of at least 3 microns.
- 13. The fuel cell in accordance with claim 1 wherein the cerium-modified doped strontium titanate material comprises a layer having a thickness of at least about 5 microns.
- 14. The fuel cell in accordance with claim 1 wherein the cerium-modified doped strontium titanate material comprises a layer having a thickness of at least about 10 microns.
- 15. The fuel cell in accordance with claim 1 wherein the cerium-modified doped strontium titanate material comprises a layer having a thickness of at least about 40 microns.
- 16. The fuel cell in accordance with claim 1 wherein the cerium-modified doped strontium titanate material comprises a layer having a thickness of from about 10 to about 50 microns.
- 17. The fuel cell in accordance with claim 1 wherein the cerium-modified doped strontium titanate material comprises a layer having a thickness of at least about 50 microns.
- 18. The fuel cell in accordance with claim 1 wherein the cerium-modified doped strontium titanate material comprises a layer having a thickness of from about 50 microns to about 1 mm.
- 19. The fuel cell in accordance with claim 1 wherein the cerium-modified doped strontium titanate material comprises essentially the entire anode layer.
- 20. The fuel cell in accordance with claim 1 wherein the cerium-modified doped strontium titanate material comprises at least about 25% of anode layer.
- 21. The fuel cell in accordance with claim 1 wherein the cerium-modified doped strontium titanate material comprises at least about 50% of anode layer.
- 22. The fuel cell in accordance with claim 1 wherein the cerium-modified doped strontium titanate material comprises at least about 75% of anode layer.
- 23. The fuel cell in accordance with claim 1 wherein the anode layer comprises a substantially homogenous mixture of a cerium-modified doped strontium titanate material and a finely-divided form of a second material.
- 24. A solid oxide fuel cell assembly for electrochemically reacting a fuel gas with a flowing oxidant gas at an elevated temperature to produce a DC output voltage, said assembly comprising a plurality of integral fuel cell units, each unit comprising a layer of ceramic ion conducting electrolyte disposed between and in contact with a conductive anode layer and a conductive cathode layer;
wherein the anode layer of at least one of said fuel cells comprises a cerium-modified doped strontium titanate composition in contact with the electrolyte, wherein the cerium-modified doped strontium titanate material comprises an A-site dopant selected from the group consisting of lanthanum, scandium, yttrium and combinations thereof; and wherein cerium is present in the cerium-modified doped strontium titanate material in an amount of at least about 2 atomic percent.
- 25. The fuel cell assembly in accordance with claim 24 wherein said fuel cells are planar fuel cells.
- 26. The fuel cell assembly in accordance with claim 24, further comprising:
a system for passing a gaseous fuel in contact with said anode layers and passing an oxidizing gas in contact with said cathode layers; and a system for utilizing electrical energy produced by said fuel cells.
- 27. An anode for a solid oxide fuel cell, the anode comprising a cerium-modified doped strontium titanate material, the material including an A-site dopant selected from the group consisting of lanthanum, scandium, yttrium and combinations thereof; and wherein cerium is present in the cerium-modified doped strontium titanate material in an amount of at least about 2 atomic percent.
- 28. The anode in accordance with claim 27 wherein the cerium is present in the cerium-modified doped strontium titanate material in an amount of from about 2 atomic percent to about 50 atomic percent.
- 29. The anode in accordance with claim 27 wherein the cerium is present in the cerium-modified doped strontium titanate material in an amount of at least about 5 atomic percent.
- 30. The anode in accordance with claim 27 wherein the A-site dopant comprises lanthanum.
- 31. The anode in accordance with claim 27 wherein the A-site dopant is present in the cerium-modified doped strontium titanate material in an amount up to about 40 atomic percent; and wherein cerium is present in the cerium-modified doped strontium titanate material in an amount up to about 50 atomic percent.
- 32. The anode in accordance with claim 27 wherein the A-site dopant comprises lanthanum; and wherein lanthanum is present in the cerium-modified doped strontium titanate material in an amount of from about 10 atomic percent to about 40 atomic percent.
- 33. The anode in accordance with claim 32 wherein lanthanum is present in the cerium-modified doped strontium titanate material in an amount of from about 10 atomic percent to about 40 atomic percent and cerium is present in the cerium-modified doped strontium titanate material in an amount of from about 10 atomic percent to about 20 atomic percent.
- 34. The anode in accordance with claim 33 wherein lanthanum is present in the cerium-modified doped strontium titanate material in an amount of about 35 atomic percent.
- 35. The anode in accordance with claim 34 wherein cerium is present in the cerium-modified doped strontium titanate material in an amount of about 10 atomic percent.
- 36. The anode in accordance with claim 34 wherein cerium is present in the cerium-modified doped strontium titanate material in an amount of about 20 atomic percent.
- 37. The anode in accordance with claim 32 wherein lanthanum is present in the cerium-modified doped strontium titanate material in an amount of from about 10 atomic percent to about 40 atomic percent and cerium is present in the cerium-modified doped strontium titanate material in an amount of up to about 80 atomic percent.
- 38. The anode in accordance with claim 27 wherein the cerium-modified doped strontium titanate material further includes at least one member selected from the group consisting of nickel, cobalt, copper, chromium and iron.
- 39. The anode in accordance with claim 27 wherein the doped strontium titanate has thermal expansion characteristics that correspond to thermal expansion characteristics of a preselected solid oxide material.
- 40. The anode in accordance with claim 39 wherein the preselected solid oxide material is selected from the group consisting of a doped zirconia, a doped ceria, a doped lanthanum gallate and a doped bismuth oxide.
- 41. The anode in accordance with claim 27 wherein the doped strontium titanate has a coefficient of thermal expansion of from about 8×10−6 to about 13×10−6 K−1.
- 42. The anode in accordance with claim 27 wherein said anode exhibits a polarization resistance of about 0.2 Ωcm2 at 850° C.
- 43. The anode in accordance with claim 27 wherein said anode exhibits a polarization resistance of about 1.3 Ωcm2 at 700° C.
- 44. The anode in accordance with claim 27 wherein performance characteristics of the anode do not vary more than about 5% for at least 200 hours under at least one condition selected from the group consisting of (1) a plurality of oxidation-reduction cycles, (2) a plurality of intermittent thermal cycles, (3) exposure to hydrogen sulfide and (4) exposure to gaseous carbon.
- 45. The anode in accordance with claim 27 wherein performance characteristics of the anode do not vary more than 2% for at least 200 hours under at least one condition selected from the group consisting of (1) a plurality of oxidation-reduction cycles, (2) a plurality of intermittent thermal cycles, (3) exposure to hydrogen sulfide and (4) exposure to gaseous carbon.
- 46. The anode in accordance with claim 27 wherein performance characteristics of the anode do not vary more than 1% for at least 200 hours under at least one condition selected from the group consisting of (1) a plurality of oxidation-reduction cycles, (2) a plurality of intermittent thermal cycles, (3) exposure to hydrogen sulfide and (4) exposure to gaseous carbon.
- 47. The anode in accordance with claim 46 wherein performance characteristics of the anode do not vary more than 0.5% for at least 200 hours under at least one of the conditions.
- 48. The anode in accordance with claim 27 wherein said cerium-modified doped strontium titanate material is in contact with a ceramic ion conducting electrolyte.
- 49. The anode in accordance with claim 27 wherein the cerium-modified doped strontium titanate material is in contact with an electrolyte layer.
- 50. The anode in accordance with claim 27 wherein the cerium-modified doped strontium titanate material comprises a layer having a thickness of at least 3 microns.
- 51. The anode in accordance with claim 27 wherein the cerium-modified doped strontium titanate material comprises a layer having a thickness of at least about 5 microns.
- 52. The anode in accordance with claim 27 wherein the cerium-modified doped strontium titanate material comprises a layer having a thickness of at least about 10 microns.
- 53. The anode in accordance with claim 27 wherein the cerium-modified doped strontium titanate material comprises a layer having a thickness of at least about 40 microns.
- 54. The anode in accordance with claim 27 wherein the cerium-modified doped strontium titanate material comprises a layer having a thickness of from about 10 to about 50 microns.
- 55. The anode in accordance with claim 27 wherein the cerium-modified doped strontium titanate material comprises a layer having a thickness of at least about 50 microns.
- 56. The anode in accordance with claim 27 wherein the cerium-modified doped strontium titanate material comprises a layer having a thickness of from about 50 microns to about 1 mm.
- 57. The anode in accordance with claim 27 wherein the cerium-modified doped strontium titanate material comprises essentially the entire anode.
- 58. The anode in accordance with claim 27 wherein the cerium-modified doped strontium titanate material comprises at least about 25% of anode.
- 59. The anode in accordance with claim 27 wherein the cerium-modified doped strontium titanate material comprises at least about 50% of anode.
- 60. The anode in accordance with claim 27 wherein the cerium-modified doped strontium titanate material comprises at least about 75% of anode.
- 61. The anode in accordance with claim 27 wherein the anode comprises a substantially homogenous mixture of a cerium-modified doped strontium titanate material and a finely-divided form of a second material.
- 62. An electrode for an electrochemical device, the electrode comprising a cerium-modified doped strontium titanate material, the material including an A-site dopant selected from the group consisting of lanthanum, scandium, yttrium and combinations thereof; and wherein cerium is present in the cerium-modified doped strontium titanate material in an amount of at least about 2 atomic percent.
- 63. The electrode in accordance with claim 62 wherein the electrochemical device is selected from the group consisting of a solid oxide fuel cell, an electrolyzer, an electrochemical pump and an electrochemical sensor.
- 64. A method for making a cerium-modified doped strontium titanate solid oxide fuel cell anode comprising:
providing a cerium-modified strontium titanate material; and forming the cerium-modified strontium titanate material into an anode for a solid oxide fuel cell.
- 65. The method in accordance with claim 64 wherein the material includes an A-site dopant selected from the group consisting of lanthanum, scandium, yttrium and combinations thereof.
- 66. The method in accordance with claim 65 wherein the A-site dopant comprises lanthanum.
- 67. The method in accordance with claim 64 wherein the cerium-modified doped strontium titanate material is in contact with an electrolyte layer.
- 68. The method in accordance with claim 64 wherein the anode comprises a layer of cerium-modified doped strontium titanate material having a thickness of at least 3 microns.
- 69. The method in accordance with claim 64 wherein the anode comprises a layer of cerium-modified doped strontium titanate material having a thickness of at least about 5 microns.
- 70. The method in accordance with claim 64 wherein the anode comprises a layer of cerium-modified doped strontium titanate material having a thickness of at least about 10 microns.
- 71. The method in accordance with claim 64 wherein the anode comprises a layer of cerium-modified doped strontium titanate material having a thickness of at least about 40 microns.
- 72. The method in accordance with claim 64 wherein the anode comprises a layer of cerium-modified doped strontium titanate material having a thickness of from about 10 to about 50 microns.
- 73. The method in accordance with claim 64 wherein the anode comprises a layer of cerium-modified doped strontium titanate material having a thickness of at least about 50 microns.
- 74. The method in accordance with claim 64 wherein the anode comprises a layer of cerium-modified doped strontium titanate material having a thickness of from about 50 microns to about 1 mm.
- 75. The method in accordance with claim 64 wherein the cerium-modified doped strontium titanate material comprises essentially the entire anode.
- 76. The method in accordance with claim 64 wherein the cerium-modified doped strontium titanate material comprises at least about 25% of anode.
- 77. The method in accordance with claim 64 wherein the cerium-modified doped strontium titanate material comprises at least about 50% of anode.
- 78. The method in accordance with claim 64 wherein the cerium-modified doped strontium titanate material comprises at least about 75% of anode.
- 79. The method in accordance with claim 64 wherein the anode comprises a substantially homogenous mixture of a cerium-modified doped strontium titanate material and a finely-divided form of a second material.
- 80. The method in accordance with claim 64 wherein the cerium-modified strontium titanate material comprises an A-site dopant selected from the group consisting of lanthanum, scandium, yttrium and combinations thereof; and cerium in an amount of at least about 2 atomic percent; and wherein said forming comprises:
mixing the cerium-modified strontium titanate material with a binder to provide an anode ink; applying the anode ink to a solid oxide electrolyte component; and sintering the anode ink.
- 81. The method in accordance with claim 80, further comprising, prior to said mixing, grinding the cerium-modified strontium titanate material to an average particle size of no greater than about 2 microns to provide a ground product.
- 82. The method in accordance with claim 64 wherein the cerium-modified strontium titanate material comprises an A-site dopant selected from the group consisting of lanthanum, scandium, yttrium and combinations thereof; and cerium in an amount of at least about 2 atomic percent; and wherein said forming comprises:
forming an anode substrate having a thickness of at least about 50 microns; and applying a solid oxide layer to the anode substrate.
- 83. The method in accordance with claim 82, further comprising, prior to said forming, grinding the cerium-modified strontium titanate material to an average particle size of no greater than about 2 microns to provide a ground product.
- 84. The method in accordance with claim 82 wherein the cerium-modified strontium titanate material is in contact with the solid oxide layer.
- 85. The method in accordance with claim 82 wherein the cerium-modified strontium titanate anode substrate has a thickness of from about 50 microns to about 1 mm.
- 86. The method in accordance with claim 64 wherein at least about 25% of the mixture is cerium.
- 87. The method in accordance with claim 64 wherein at least about 50% of the mixture is cerium.
- 88. The method in accordance with claim 64 wherein at least about 75% of the mixture is cerium.
- 89. The method in accordance with claim 80 wherein said sintering comprises sintering in a reducing environment.
- 90. The method in accordance with claim 89 wherein the reducing environment comprises an inert gas and hydrogen, the hydrogen having a concentration of from about 2 to about 100 volume percent.
- 91. The method in accordance with claim 90 wherein the hydrogen has a concentration of about 2 to about 10 volume percent.
- 92. The method in accordance with claim 90 wherein the hydrogen has a concentration of about 4 volume percent.
- 93. The method in accordance with claim 90 wherein the inert gas comprises argon.
- 94. A method for producing electrical energy, comprising:
providing a solid oxide fuel cell, the solid oxide fuel cell including a layer of ceramic ion conducting electrolyte defining first and second opposing surfaces; a conductive anode layer in contact with the first surface of said electrolyte layer; and a conductive cathode layer in contact with the second surface of said electrolyte layer; wherein said electrolyte layer is disposed between said anode layer and said cathode layer; wherein said conductive anode layer comprises a cerium-modified doped strontium titanate material; wherein the cerium-modified doped strontium titanate material comprises an A-site dopant selected from the group consisting of lanthanum, scandium, yttrium and combinations thereof; and wherein cerium is present in the cerium-modified doped strontium titanate material in an amount of at least about 2 atomic percent; causing air or other oxidizing gas to flow in contact with the cathode layer; and causing a fuel gas to intermittently flow in contact with the anode layer to provide electrical energy;
wherein the intermittent flow of the fuel gas includes periods of fuel flow separated by at least one period during which the flow of the fuel is interrupted and the anode layer is exposed to an oxidizing atmosphere.
- 95. The method in accordance with claim 94 wherein the at least one period during which the flow of the fuel is interrupted is a period of at least one minute.
- 96. The method in accordance with claim 94 wherein the at least one period during which the flow of the fuel is interrupted is a period of at least ten minutes.
- 97. The method in accordance with claim 94 wherein the at least one period during which the flow of the fuel is interrupted is a period of at least one hour.
- 98. A method for producing electrical energy, comprising:
providing a solid oxide fuel cell, the solid oxide fuel cell including a layer of ceramic ion conducting electrolyte defining first and second opposing surfaces; a conductive anode layer in contact with the first surface of said electrolyte layer; and a conductive cathode layer in contact with the second surface of said electrolyte layer; wherein said electrolyte layer is disposed between said anode layer and said cathode layer; wherein said conductive anode layer comprises a cerium-modified doped strontium titanate material; wherein the cerium-modified doped strontium titanate material comprises an A-site dopant selected from the group consisting of lanthanum, scandium, yttrium and combinations thereof; and wherein cerium is present in the cerium-modified doped strontium titanate material in an amount of at least about 2 atomic percent; causing air or other oxidizing gas to flow in contact with the cathode layer; and causing a fuel gas to flow in contact with the anode layer to provide electrical energy;
wherein the fuel includes a carbon-containing gas; and wherein the fuel cell produces electrical energy for a period of at least one hour.
- 99. The method in accordance with claim 98 wherein the fuel cell produces electrical energy for a period of at least ten hours.
- 100. The method in accordance with claim 98 wherein the fuel cell produces electrical energy for a period of at least twenty-four hours.
- 101. The method in accordance with claim 98 wherein the carbon-containing gas comprises a member selected from the group consisting of carbon monoxide and methane.
- 102. A method for producing electrical energy, comprising:
providing a solid oxide fuel cell, the solid oxide fuel cell including a layer of ceramic ion conducting electrolyte defining first and second opposing surfaces; a conductive anode layer in contact with the first surface of said electrolyte layer; and a conductive cathode layer in contact with the second surface of said electrolyte layer; wherein said electrolyte layer is disposed between said anode layer and said cathode layer; wherein said conductive anode layer comprises a cerium-modified doped strontium titanate material; wherein the cerium-modified doped strontium titanate material comprises an A-site dopant selected from the group consisting of lanthanum, scandium, yttrium and combinations thereof; and wherein cerium is present in the cerium-modified doped strontium titanate material in an amount of at least about 2 atomic percent; causing air or other oxidizing gas to flow in contact with the cathode layer; and causing a fuel gas to flow in contact with the anode layer to provide electrical energy;
wherein the fuel is a sulfur-bearing fuel; and wherein the fuel cell produces electrical energy for a period of at least one hour.
- 103. The method in accordance with claim 102 wherein the fuel cell produces electrical energy for a period of at least ten hours.
- 104. The method in accordance with claim 102 wherein the fuel cell produces electrical energy for a period of at least twenty-four hours.
REFERENCES TO RELATED APPLICATIONS
[0001] This application claims the benefit of U.S. Provisional Application No. 60/377,527, filed May 3, 2002, which is hereby incorporated by reference herein in its entirety.
GOVERNMENT RIGHTS
[0002] This invention was made with Government support under Contract Number DE-AC0676RLO1830 awarded by the U.S. Department of Energy. The Government has certain rights in the invention.
Provisional Applications (1)
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Number |
Date |
Country |
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60377527 |
May 2002 |
US |