Claims
- 1. An electricity producing fuel cell comprising:
a carbon-containing anode; an electrolyte in contact with said anode at a first contact surface area, allowing passage of oxygen anions to said anode; and a solid state cathode in contact with said electrolyte at a second contact surface area, for ionizing oxygen to the oxygen anions, said fuel cell being operable at a temperature of between about 400° C. and about 2000° C.
- 2. The fuel cell as in claim 1, wherein said fuel cell is operable at a temperature of between about 700° C. and about 1200° C.
- 3. The fuel cell as in claim 1, wherein said fuel cell has an electrical output of at least 1 mWcm−2 of said second contact surface area.
- 4. The fuel cell as in claim 1, wherein said fuel cell has an electrical output of from about 1 mWcm−2 to about 5000 mWcm−2 of said second contact surface area.
- 5. The fuel cell as in claim 1, wherein said fuel cell has an electrical output of from about 10 mWcm−2 to about 5000 mWcm−2 of said second contact surface area.
- 6. The fuel cell as in claim 1, wherein said anode comprises conductive carbon having a resistivity of between about 10−5 ohm-cm to about 100 ohm-cm.
- 7. The fuel cell as in claim 1, wherein said anode comprises conductive carbon having a resistivity of between about 10−3 ohm-cm to about 10−1 ohm-cm.
- 8. The fuel cell as in claim 1, wherein said anode is selected from the group consisting of graphite, quasi-graphite, coal, coke, charcoal, fullerene, buckminsterfullerene, carbon black, activated carbon, decolorizing carbon and mixtures thereof.
- 9. The fuel cell as in claim 1, wherein said anode is selected from the group consisting of a solid material and a particulate material.
- 10. The fuel cell as in claim 1, wherein said electrolyte is a solid state electrolyte.
- 11. The fuel cell as in claim 10, wherein said electrolyte defines a distance therethru from said first contact surface area to said second contact surface area of between about 1 μm to 1000 μm.
- 12. The fuel cell as in claim 10, wherein said electrolyte defines a distance therethru from said first contact surface area to said second contact surface area of between about 1 μm to 600 μm.
- 13. The fuel cell as in claim 10, wherein said electrolyte defines a distance therethru from said first contact surface area to said second contact surface area of between about 1 μm to 100 μm.
- 14. The fuel cell as in claim 10, wherein said solid state electrolyte is selected from the group consisting of a metal oxide and a plurality of metal oxides.
- 15. The fuel cell as in claim 14, wherein said solid state electrolyte has a formula (ZrO2)(HfO2)a(TiO2)b(Al2O3)c(Y2O3)d(MxOy)e where a is from 0 to about 0.2, b is from 0 to about 0.5 c is from 0 to about 0.5, d is from 0 to about 0.5, x is an integer greater than 0 and less than or equal to 2, y is an integer greater than 0 and less than or equal to 3, e is from 0 to about 0.15, and M is selected from the group consisting of manganese, iron, cobalt, nickel, copper, and zinc.
- 16. The fuel cell as in claim 15, wherein said solid state electrolyte is selected from the group consisting of (ZrO2), (ZrO2)(Y2O3)0.08, (ZrO2)(HfO2)0.02(Y2O3)0.08, (ZrO2)(HfO2)0.02(Y2O3)0.05, (ZrO2)(HfO2)0.02(Y2O3)0.08(Ti)2)0.10, (ZrO2)(HfO2)0.02(Y2O3)0.08(Al2O3)0.10, (ZrO2)(Y2O3)0.08(Fe2O3)0.05, (ZrO2)(Y2O3)0.08(CoO)0.05, (ZrO2)(Y2O3)0.08(ZnO)0.05, (ZrO2)(Y2O3)0.08(NiO)0.05, (ZrO2)(Y2O3)0.08(CuO)0.05, and (ZrO2)(Y2O3)0.08(MnO)0.05.
- 17. The fuel cell as in claim 15, wherein said electrolyte is a blend comprising (ZrO2)(HfO2)a(TiO2)b(Al2O3)c(Y2O3)d(MxOy)e and a maximum of 80% of at least one organic binder selected from the group consisting of water, polyols, polyesters and polysaccharides.
- 18. The fuel cell as in claim 1, wherein said electrolyte has a melting temperature of between about 300° C. and about 2000° C.
- 19. The fuel cell as in claim 18, wherein said electrolyte is selected from the group consisting of metal carbonate, metal oxide, a plurality of metal carbonates, a plurality of metal oxides and mixtures thereof.
- 20. The fuel cell as in claim 19, wherein said electrolyte is selected from the group consisting of lithium carbonate, sodium carbonate, potassium carbonate, strontium carbonate, barium carbonate, magnesium carbonate, calcium carbonate, beryllium carbonate, cesium carbonate, rubidium carbonate, PbCl22PbO, PbO, Bi2O3, Bi2O5, molybdenum oxide, Cs2O, Cs2O3, Sb2O3, Sb2O4, Sb2O5, CuO, CuO2, GeO2, GeO, lithium oxide, palladium oxide, K2O, KO2, NaO2, Na2O2, RbO2, Rb2O3, Rb2O2, SnO, SnO2, tellurium oxide, Tl2O, Tl2O3, vanadium oxide, As4O6, AS2O5, In2O, In2O3, and mixtures thereof.
- 21. The fuel cell as in claim 1, wherein said solid state cathode has an oxygen ionization rate of between about 10 gs−1cm−2 and about 10−3 gs−1cm−2.
- 22. The fuel cell as in claim 1, wherein said solid state cathode has an oxygen ionization rate of between about 5×10−6 gs−1cm−2 and about 10−4 gs−1cm−2.
- 23. The fuel cell as in claim 1, wherein said solid state cathode has an electrical resistivity of between about 10−9 ohm-cm to about 100 ohm-cm.
- 24. The fuel cell as in claim 1, wherein said solid state cathode is selected from the group consisting of a metal, a metal oxide, a plurality of metal oxides and mixtures thereof.
- 25. The fuel cell as in claim 24, wherein said solid state cathode is selected from the group consisting of platinum, palladium, gold, silver, stainless steel, copper, nickel, cobalt, titanium, vanadium, chromium, iron and zirconium.
- 26. The fuel cell as in claim 24, wherein said solid state cathode has a formula LaxMnyAaBbCcOd where A is an alkaline earth metal, B is selected from the group consisting of scandium, yttrium and a lanthanide metal, C is selected from the group consisting of titanium, vanadium, chromium, iron, cobalt, nickel, copper, zinc, zirconium, hafnium, aluminum and antimony, x is from 0 to about 1.05, y is from 0 to about 1, a is from 0 to about 0.5, b is from 0 to about 0.5, c is from 0 to about 0.5 and d is between about 1 and about 5, and at least one of x, y, a, b and c is greater than zero.
- 27. The fuel cell as in claim 26, wherein said solid state cathode is selected from the group consisting of LaMnO3, La0.84Sr0.16MnO3, La0.84Ca0.16MnO3, La0.84Ba0.16MnO3, La0.65Sr0.35Mn0.8Co0.2O3, La0.79Sr0.16Mn0.85Co0.15O3, La0.84Sr0.16Mn0.8Ni0.2O3, La0.84Sr0.16Mn0.8Fe0.2O3, La0.84Sr0.16Mn0.8Ce0.2O3, La0.84Sr0.16Mn0.8Mg0.2O3, La0.84Sr0.16Mn0.8Cr0.2O3, La0.6Sr0.35Mn0.8Al0.2O3, La0.84Sc0.16MnO3, and La0.84Y0.16MnO3.
- 28. The fuel cell as in claim 26, wherein said solid state cathode is a physical mixture of LaxMnyAaBbCcOd and (ZrO2)(HfO2)e(Y2O3)f at a ratio from 1:0 to about 1:2 where e is from 0 to about 0.2 and f is from 0 to about 0.5.
- 29. The fuel cell as in claim 28, wherein said physical mixture further comprises a binding reagent selected from the group consisting of water, polyols, polyesters and polysaccharides.
- 30. The fuel cell as in claim 24, wherein said solid state cathode has a formula LixM1-xO where M is a metal selected from the group consisting of nickel and cobalt and x is from 0 to about 0.25.
- 31. The fuel cell as in claim 24, wherein said solid state cathode is Cr2O3.
- 32. The fuel cell as in claim 1, wherein said solid state cathode has a thickness of at least 1 μm.
- 33. The fuel cell as in claim 1, further comprising a substrate in contact with said solid state cathode at a surface other than said second contact surface area, for providing support to said cathode.
- 34. The fuel cell as in claim 33, wherein said substrate is selected from the group consisting of Al2O3, TiO2, ZrO2, zirconia stabilized by CaO and zirconia stabilized by Y2O3.
- 35. The fuel cell as in claim 1, further comprising an inert gas to isolate said anode from a surrounding environment.
- 36. The fuel cell as in claim 1, further comprising a source for directing an oxygen-containing gas flow to said solid state cathode.
- 37. The fuel cell as in claim 1, further comprising a mechanical device in operative relationship to said anode and acting to increase said first contact surface area.
- 38. The fuel cell as in claim 1, further comprising a heater positioned to heat said fuel cell to a temperature of between about 400° C. and 2000° C.
- 39. A method for generating electricity in a fuel cell, said method comprising:
providing a carbon-containing anode; providing an electrolyte in contact with said carbon-containing anode at a first contact surface area; providing a solid state cathode in contact with said electrolyte at a second contact surface area; directing an oxygen-containing gas flow to said cathode; and heating said fuel cell to a temperature of between about 400° C. and about 2000° C. to produce an electrical output of at least about 1 mWcm−2 of said second contact surface area.
- 40. A method as in claim 39, wherein said electrolyte is provided as a solid state electrolyte.
- 41. A method as in claim 39, wherein said solid state electrolyte is deposited onto said cathode at said second contact surface area by a method selected from the group consisting of screen-printing, painting, spraying, dipping, pressing and ion deposition.
- 42. A method as in claim 39, further comprising said anode being in particle form and urging said anode particles into contact with said electrolyte to increase said first contact surface area.
- 43. A method as in claim 42, wherein said urging is executed by a spring.
- 44. A fuel cell apparatus for generating electricity, comprising:
a carbon-containing anode; an electrolyte in contact with said anode at a first contact surface area; a solid state cathode in contact with said electrolyte at a second contact surface area; a heater for heating said anode to a temperature of between about 400° C. and about 2000° C. means for directing an oxygen-containing gas stream to said cathode to produce an electrical output of at least about 1 mWcm−2 of said second contact surface area.
- 45. The fuel cell as in claim 44, wherein said electrical output is from about 1 mWcm−2 to about 5000 mWcm−2 of said second contact surface area.
- 46. The fuel cell as in claim 44, wherein said electrical output is from about 10 mWcm−2 to about 5000 mWcm−2 of said second contact surface area.
- 47. The fuel cell as in claim 44, wherein said anode comprises conductive carbon having a resistivity of between about 10−5 ohm-cm to about 100 ohm-cm.
- 48. The fuel cell as in claim 44, wherein said anode comprises conductive carbon having a resistivity of between about 10−3 ohm-cm to about 10−1 ohm-cm.
- 49. The fuel cell as in claim 47, wherein said anode is selected from the group consisting of graphite, quasi-graphite, coal, coke, charcoal, fullerene, buckminsterfullerene, carbon black, activated carbon, decolorizing carbon and mixtures thereof.
- 50. The fuel cell as in claim 49, wherein said anode is provided as a particulate material.
- 51. A fuel cell apparatus as in claim 50, further comprising urging means for increasing said first contact surface area.
- 52. A fuel cell apparatus as in claim 51, wherein said urging means comprises a spring.
- 53. A fuel cell apparatus as in claim 47, further comprising means to direct an inert gas to said anode.
- 54. A fuel cell apparatus as in claim 44, wherein said electrolyte is a solid state electrolyte.
- 55. The fuel cell as in claim 54, wherein said electrolyte defines a distance therethru from said first contact surface area to said second contact surface area of between about 1 μm to 1000 μm.
- 56. The fuel cell as in claim 54, wherein said electrolyte defines a distance therethru from said first contact surface area to said second contact surface area of between about 1 μm to 600 μm.
- 57. The fuel cell as in claim 54, wherein said electrolyte defines a distance therethru from said first contact surface area to said second contact surface area of between about 1 μm to 100 μm.
- 58. The fuel cell as in claim 54, wherein said solid state electrolyte is selected from the group consisting of a metal oxide and a plurality of metal oxides.
- 59. The fuel cell as in claim 58, wherein said solid state electrolyte has a formula (ZrO2)(HfO2)a(TiO2)b(Al2O)c(Y2O3)d(MxOy)e where a is from 0 to about 0.2, b is from 0 to about 0.5, c is from 0 to about 0.5, d is from 0 to about 0.5, x is an integer greater than 0 and less than or equal to 2, y is an integer greater than 0 and less than or equal to 3, e is from 0 to about 0.15, and M; and M□ can be the same or different and each is selected from the group consisting of manganese, iron, cobalt, nickel, copper, zinc, calcium, cerium, thorium, bismuth, gadolinium, samarium and tungsten.
- 60. The fuel cell as in claim 59, wherein said solid state electrolyte is selected from the group consisting of (ZrO2), (ZrO2)(Y2O3)0.08, (ZrO2)(HfO2)0.02(Y2O3)0.08, (ZrO2)(HfO2)0.02(Y2O3)0.05, (ZrO2)(Y2O3)0.08(Fe2O3)0.05, (ZrO2)(Y2O3)0.08(CoO)0.05, (ZrO2)(Y2O3)0.08(ZnO)0.05, (ZrO2)(Y2O3)0.08(NiO)0.05, (ZrO2)(Y2O3)0.08(CuO)0.05, and (ZrO2)(Y2O3)0.08(MnO)0.05.
- 61. The fuel cell as in claim 44, wherein said electrolyte has a melting temperature of between about 300° C. and about 2000° C.
- 62. The fuel cell as in claim 61, wherein said electrolyte is selected from the group consisting of metal carbonate, metal oxide, a plurality of metal carbonates, a plurality of metal oxides and mixtures thereof.
- 63. The fuel cell as in claim 62, wherein the electrolyte is selected from the group consisting of lithium carbonate, sodium carbonate, potassium carbonate, strontium carbonate, barium carbonate, magnesium carbonate, calcium carbonate, beryllium carbonate, cesium carbonate, rubidium carbonate, PbCl22PbO, PbO, Bi2O3, Bi2O5, molybdenum oxide, Cs2O, Cs2O3, Sb2O3, Sb2O4, Sb2O5, CuO, CuO2, GeO2, GeO, lithium oxide, palladium oxide, K2O, KO2, NaO2, Na2O2, RbO2, Rb2O3, Rb2O2, SnO, SnO2, tellurium oxide, Tl2O, Tl2O3, vanadium oxide, As4O6, As2O5, In2O, In2O3, and mixtures thereof.
- 64. The fuel cell as in claim 44, wherein said solid state cathode has an oxygen ionization rate of between about 10−8 gs−1cm−2 and about 10−3 gs−1cm−2.
- 65. The fuel cell as in claim 44, wherein said solid state cathode has an oxygen ionization rate of between about 5×10−6 gs−1cm−2 and about 10−4 gs−1cm−2.
- 66. The fuel cell as in claim 64, wherein said solid state cathode is selected from the group consisting of a metal, a metal oxide, a plurality of metal oxides and mixtures thereof.
- 67. The fuel cell as in claim 66, wherein the solid state cathode is selected from the group consisting of platinum, palladium, gold, silver, stainless steel, copper, nickel, cobalt, titanium, vanadium, chromium, iron and zirconium.
- 68. The fuel cell as in claim 66, wherein the solid state cathode has a formula LaxMnyAaBbCcOd where A is an alkaline earth metal, B is selected from the group consisting of scandium, yttrium and a lanthanide metal, C is selected from the group consisting of titanium, vanadium, chromium, iron, cobalt, nickel, copper, zinc, zirconium, hafnium, aluminum and antimony, x is from 0 to about 1.05, y is from 0 to about 1, a is from 0 to about 0.5, b is from 0 to about 0.5, c is from 0 to about 0.5 and d is between about 1 and about 5, and at least one of x, y, a, b and c is greater than zero.
- 69. The fuel cell as in claim 68, wherein the solid state cathode is selected from the group consisting of LaMnO3, La0.84Sr0.16MnO3, La0.84Ca0.16MnO3, La0.84Ba0.16MnO3, La0.65Sr0.35Mn0.8Co0.2O3, La0.79Sr0.16Mn0.85Co0.15O3, La0.84Sr0.16Mn0.8Ni0.2O3, La0.84Sr0.16Mn0.8Fe0.2O3, La0.84Sr0.16Mn0.8Ce0.2O3, La0.84Sr0.16Mn0.8Mg0.2O3, La0.84Sr0.16Mn0.8Cr0.2O3, La0.6Sr0.35Mn0.8Al0.2O3, La0.84Sc0.16MnO3, and La0.84Y0.16MnO3.
- 70. The fuel cell as in claim 66, wherein said solid state cathode has a formula LixM1-xO where M is a metal selected from the group consisting of nickel and cobalt and x is from 0 to about 0.25.
- 71. The fuel cell as in claim 44, further comprising a substrate in contact with a surface of said solid state cathode for providing support to said cathode, said surface being an opposing surface to said second contact surface area.
- 72. The fuel cell as in claim 55, wherein said solid state cathode has a formula LaxMnyAaBbCcOd where A is selected from the group consisting of alkaline earth metals, B is selected from the group consisting of scandium, yttrium and lanthanides, C is selected from the group consisting of titanium, vanadium, chromium, iron, cobalt, nickel, copper, zinc, zirconium, hafnium, aluminum and antimony, x is from 0 to about 1.05, y is from 0 to about 1, a is from 0 to about 0.5, b is from 0 to about 0.5, c is from 0 to about 0.5 and d is between about 1 and about 5, and at least one of x, y, a, b and c is greater than zero, and said solid state electrolyte has a formula (ZrO2)(HfO2)a(TiO2)b(Al2O3)c(Y2O3)d(MxOy)e where a is from 0 to about 0.2, b is from 0 to about 0.5, c is from 0 to about 0.5, d is from 0 to about 0.5, x is an integer greater than 0 and less than or equal to 2, y is an integer greater than 0 and less than or equal to 3, e is from 0 to about 0.15, and M is selected from the group consisting of manganese, iron, cobalt, nickel, copper and zinc.
- 73. The fuel cell as in claim 72, wherein said solid state cathode has an oxygen ionization rate of between about 10−8 gs−1cm−2 and about 10−3 gs−1cm−2 and said solid state cathode has a thickness of at least about 1 μm.
- 74. The fuel cell as in claim 64, wherein said solid state cathode has an electrical resistivity of between about 10−9 ohm-cm to about 100 ohm-cm.
RELATED APPLICATIONS
[0001] This application is a continuation of U.S. patent application Ser. No. 09/819,886, filed Mar. 28, 2001 (pending), which is a continuation of U.S. patent application Ser. No. 09/033,923, filed Mar. 3, 1998 (abandoned), both of which are incorporated herein by reference.
Continuations (2)
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Number |
Date |
Country |
| Parent |
09819886 |
Mar 2001 |
US |
| Child |
10744231 |
Dec 2003 |
US |
| Parent |
09033923 |
Mar 1998 |
US |
| Child |
09819886 |
Mar 2001 |
US |