Claims
- 1. A microfibrous fuel cell structure, comprising:
an inner current collector; an outer current collector; a hollow fibrous membrane separator comprising an electrolyte medium, said membrane separator being in electrical contact with both the inner and outer current collectors; an inner electrocatalyst layer in contact with said inner current collector and said hollow fibrous membrane separator; and an outer electrocatalyst layer in contact with said outer current collector and said hollow fibrous membrane separator, wherein both the inner and outer electrocatalyst layers are electrically conductive, and wherein at least one of the inner and outer electrocatalyst layers comprises:
(a) a catalyst layer comprising a catalytic material; and (b) an interfacial composite layer comprising a mixture of said catalytic material and said electrolyte medium.
- 2. The microfibrous fuel cell structure of claim 1, wherein each of the inner and outer electrocatalyst layers comprises said catalyst layer and said interfacial composite layer.
- 3. The microfibrous fuel cell structure of claim 1, wherein said catalyst layer consists essentially of said catalytic material.
- 4. The microfibrous fuel cell structure of claim 1, wherein said catalyst layer further comprises the electrolyte medium.
- 5. The microfibrous fuel cell structure of claim 4, wherein said catalyst layer forms a homogeneous, continuous structure with said interfacial composite layer.
- 6. The microfibrous fuel cell structure of claim 1, wherein said electrolyte medium comprises at least one solid electrolyte material.
- 7. The microfibrous fuel cell structure of claim 6, wherein said solid electrolyte material comprises an ion-exchange polymer selected from the group consisting of perflurocarbon-sulfonic-acid-based polymers, polysulfone-based polymers, perfluorocarboxylic-acid-based polymers, styrene-vinyl-benzene-sulfonic-acid-based polymers, and styrene-butadiene-based polymers.
- 8. The microfibrous fuel cell structure of claim 1, wherein said catalytic material comprises metal selected from the group consisting of platinum, gold, ruthenium, iridium, palladium, rhodium, nickel, iron, molybdenum, tungsten, niobium, and alloys thereof.
- 9. The microfibrous fuel cell structure of claim 1, wherein said catalytic material comprises metal selected from the group consisting of platinum and platinum alloys.
- 10. The microfibrous fuel cell structure of claim 1, wherein said catalytic material comprises metal selected from the group consisting of platinum-ruthenium alloy, platinum-ruthenium-iron alloy, platinum-molybdenum alloy, platinum-chromium alloy, platinum-tin alloy, and platinum-nickel alloy.
- 11. The microfibrous fuel cell structure of claim 1, wherein said catalytic material comprises particles of metal or metal alloy, having an average particle size in a range of from about 1 nm to about 100 nm.
- 12. The microfibrous fuel cell structure of claim 1, wherein said catalyst layer is characterized by a catalytic surface area in a range of from about 1 m2/g to about 200 m2/g.
- 13. The microfibrous fuel cell structure of claim 1, wherein said catalyst layer is characterized by a catalytic surface area in a range of from about 10 m2/g to about 100 m2/g.
- 14. The microfibrous fuel cell structure of claim 1, wherein said interfacial composite layer is characterized by a catalytic surface area in a range of from about 1 m2/g to about 200 m2/g.
- 15. The microfibrous fuel cell structure of claim 1, wherein said interfacial composite layer is characterized by a catalytic surface area in a range of from about 10 m2/g to about 100 m2/g.
- 16. The microfibrous fuel cell structure of claim 1, wherein said catalyst layer is characterized by an electrical resistance in a range of from about 0.1 Ω to about 1000 Ω, measured over a distance of about 1 mm.
- 17. The microfibrous fuel cell structure of claim 1, wherein said catalyst layer is characterized by an electrical resistance in a range of from about 0.1 Ω to about 100 Ω, measured over a distance of about 1 mm.
- 18. The microfibrous fuel cell structure of claim 1, wherein said interfacial composite layer is characterized by an electrical resistance in a range of from about 0.1 Ω to about 10,000 Ω, measured over a distance of about 1 mm.
- 19. The microfibrous fuel cell structure of claim 1, wherein said interfacial composite layer is characterized by an electrical resistance in a range of from about 1 Ω to about 100 Ω, measured over a distance of about 1 mm.
- 20. The microfibrous fuel cell structure of claim 6, wherein said hollow fibrous membrane separator further comprises at least one metal catalyst selected from the group consisting of platinum, gold, ruthenium, iridium, palladium, rhodium, and alloys thereof, at a concentration in a range of from about 0.1% to about 80% by total weight of the solid electrolyte material.
- 21. The microfibrous fuel cell structure of claim 20, wherein said hollow fibrous membrane separator further comprises at least one metal oxide selected from the group consisting of silica, titania, alumina, zirconia, and stannic oxide, at a concentration in a range of from about 0.1% to about 50% by total weight of the solid electrolyte material.
- 22. A fuel cell assembly, comprising multiple microfibrous fuel cells bundled together, wherein at least one of said multiple microfibrous fuel cells is characterized by the microfibrous fuel cell structure of claim 1.
- 23. The fuel cell assembly of claim 22, wherein said multiple microfibrous fuel cells are connected in parallel and/or in series.
- 24. A fuel cell assembly, comprising multiple microfibrous fuel cells bundled together, wherein each of said multiple microfibrous fuel cells is characterized by the microfibrous fuel cell structure of claim 1.
- 25. The fuel cell assembly of claim 24, wherein said multiple microfibrous fuel cells are connected in parallel and/or in series.
- 26. A fuel cell assembly, comprising multiple microfibrous fuel cells bundled together, wherein at least one of said multiple microfibrous fuel cells is characterized by the microfibrous fuel cell structure of claim 2.
- 27. A fuel cell assembly, comprising multiple microfibrous fuel cells bundled together, wherein at least one of said multiple microfibrous fuel cells is characterized by the microfibrous fuel cell structure of claim 3.
- 28. A fuel cell assembly, comprising multiple microfibrous fuel cells bundled together, wherein at least one of said multiple microfibrous fuel cells is characterized by the microfibrous fuel cell structure of claim 5.
- 29. A microfibrous fuel cell structure, comprising:
an inner current collector; an outer current collector; a hollow fibrous membrane separator comprising an electrolyte medium, said membrane separator being in electrical contact with both the inner and outer current collectors; an inner electrocatalyst layer in contact with said inner current collector and said hollow fibrous membrane separator; and an outer electrocatalyst layer in contact with said outer current collector and said hollow fibrous membrane separator, wherein both the inner and outer electrocatalyst layers are electrically conductive, and wherein at least one of the inner and outer electrocatalyst layers comprises:
(a) a catalyst layer comprising a catalytic material; and (b) an interfacial composite layer comprising a mixture of said electrolyte medium and an electrically conductive material.
- 30. A fuel cell assembly, comprising multiple microfibrous fuel cells bundled together, wherein at least one of said multiple microfibrous fuel cells is characterized by the microfibrous fuel cell structure of claim 29.
- 31. A method for forming a microfibrous fuel cell structure, comprising the steps of:
(a) providing a microfibrous fuel cell precursor, wherein said microfibrous fuel cell precursor comprises an inner current collector, an outer current collector, and a hollow fibrous membrane separator comprising an electrolyte medium, and wherein said hollow fibrous membrane separator is in electrical contact with both the inner and outer current collector; and (b) catalyzing said microfibrous fuel cell precursor, so as to form an inner electrocatalyst layer that is in contact with said inner current collector and said hollow fibrous membrane separator, and an outer electrocatalyst layer that is in contact with said outer current collector and said hollow fibrous membrane separator, wherein both the inner and outer electrocatalyst layers are electrically conductive, and wherein at least one of the inner and outer electrocatalyst layers comprises:
(i) a catalyst layer comprising a catalytic material; and (ii) an interfacial composite layer comprising a mixture of said catalytic material and said electrolyte medium.
- 32. The method of claim 31, wherein the inner and outer electrocatalyst layers are formed simultaneously.
- 33. The method of claim 31, wherein the inner and outer electrocatalyst layers are formed sequentially.
- 34. The method of claim 31, wherein at least one of the inner and outer electrocatalyst layers is formed by a catalyzation process selected from the group consisting of diffusion catalyzation, ion-exchange catalyzation, electrodeposition catalyzation, impregnation catalyzation, chemical deposition catalyzation, and alternating catalyst/electrolyte addition catalyzation.
- 35. The method of claim 31, wherein both the inner and outer electrocatalyst layers are formed by a catalyzation process selected from the group consisting of diffusion catalyzation, ion-exchange catalyzation, electrodeposition catalyzation, impregnation catalyzation, chemical deposition catalyzation, and alternating catalyst/electrolyte addition catalyzation.
- 36. The method of claim 31, wherein the inner and outer electrocatalyst layers are formed by two different catalyzation processes selected from the group consisting of diffusion catalyzation, ion-exchange catalyzation, electrodeposition catalyzation, impregnation catalyzation, chemical deposition catalyzation, and alternating catalyst/electrolyte addition catalyzation.
- 37. The method of claim 31, wherein said interfacial composite layer is formed by a first catalyzation process, wherein said catalyst layer is formed by a second catalyzation process, wherein the first and the second catalyzation processes are selected from the group consisting of diffusion catalyzation, ion-exchange catalyzation, electrodeposition catalyzation, impregnation catalyzation, chemical deposition catalyzation, and alternating catalyst/electrolyte addition catalyzation, and wherein said first catalyzation process is different from said second catalyzation process.
- 38. The method of claim 31, wherein said electrocatalyst layer that comprises the catalyst layer and the interfacial composite layer is formed by diffusion catalyzation, said method comprising the steps of:
(a) providing said microfibrous fuel cell precursor, which has a bore side interior of the hollow fibrous membrane separator and a shell side exterior of the hollow fibrous membrane separator; (b) flowing an electrocatalyst precursor solution through the bore side (or the shell side) of the microfibrous fuel cell precursor; (c) flowing, concurrently with step (b), a reducing medium through the shell side (or the bore side) of the microfibrous fuel cell precursor; and (d) adjusting processing conditions in such a manner that said reducing medium diffuses through the hollow fibrous membrane separator of the microfibrous fuel cell precursor to react with the electrocatalyst precursor solution, so as to deposit the catalytic material (1) on a surface of said hollow fibrous membrane separator at the bore side (or the shell side), forming the catalyst layer of said electrocatalyst layer, and (2) at a location that is inside the matrix of said hollow fibrous membrane separator in proximity to said surface at the bore side (or the shell side), forming the interfacial composite layer of said electrocatalyst layer.
- 39. The method of claim 38, wherein the electrocatalyst precursor solution comprises at least one metal element selected from the group consisting of platinum, gold, ruthenium, iridium, palladium, rhodium, nickel, iron, molybdenum, tungsten, and niobium.
- 40. The method of claim 39, wherein the electrocatalyst precursor comprises more than one noble metal element.
- 41. The method of claim 38, wherein the electrocatalyst precursor solution comprises at least one noble metal salt selected from the group consisting of: H2PtCl6, K2PtCl4, RuCl3.xH2O, K2RuCl5, and K2RuCl5(NO).
- 42. The method of claim 41, wherein the electrocatalyst precursor solution comprises two or more said noble metal salts.
- 43. The method of claim 41, wherein said electrocatalyst precursor solution further comprises at least one organic solvent.
- 44. The method of claim 43, wherein said organic solvent includes a solvent selected from the group consisting of C1-C8 alcohols.
- 45. The method of claim 38, wherein the reducing medium comprises at least one reducing agent selected from the group consisting of: sodium borohydride, hydrazine, hydrogen, sodium thiosulfate, potassium thiosulfate, formaldehyde, formic acid, hypophosphites, amine boranes, hydroxylamine, acetaldehyde, hydroquinone, propionaldehyde, methyl magnesium chloride, lithium aluminum hydride, thiourea, and thioacetamide.
- 46. The method of claim 31, wherein said electrocatalyst layer that comprises the catalyst layer and the interfacial composite layer is formed by diffusion catalyzation, said method comprising the steps of:
(a) providing said microfibrous fuel cell precursor, which has a bore side interior of the hollow fibrous membrane separator and a shell side exterior of the hollow fibrous membrane separator; (b) flowing an electrocatalyst precursor solution through the bore side (or the shell side) of the microfibrous fuel cell precursor; (c) flowing, concurrently with step (b), a reducing medium through the shell side (or the bore side) of the microfibrous fuel cell precursor; and (d) adjusting processing conditions in such a manner that said electrocatalyst precursor solution diffuses through the hollow fibrous membrane separator of the microfibrous fuel cell precursor to react with the reducing medium, so as to deposit the catalytic material (1) on a surface of said hollow fibrous membrane separator at the shell side (or the bore side), forming the catalyst layer of said electrocatalyst layer, and (2) at a location that is inside the matrix of said hollow fibrous membrane separator in proximity to said surface at the shell side (or the bore side), forming the interfacial composite layer of said electrocatalyst layer.
- 47. The method of claim 46, wherein the electrocatalyst precursor solution comprises at least one metal element selected from the group consisting of platinum, gold, ruthenium, iridium, palladium, rhodium, nickel, iron, molybdenum, tungsten, and niobium.
- 48. The method of claim 47, wherein the electrocatalyst precursor comprises more than one noble metal element.
- 49. The method of claim 46, wherein the electrocatalyst precursor solution comprises at least one noble metal salt selected from the group consisting of: H2PtCl6, K2PtCl4, RuCl3.xH20, K2RuCl5, and K2RuCl5(NO).
- 50. The method of claim 49, wherein the electrocatalyst precursor solution comprises two or more said noble metal salts.
- 51. The method of claim 49, wherein said electrocatalyst precursor solution further comprises at least one organic solvent.
- 52. The method of claim 51, wherein said organic solvent is selected from the group consisting of C1-C8 alcohols.
- 53. The method of claim 46, wherein the reducing medium comprises at least one reducing agent selected from the group consisting of: sodium borohydride, hydrazine, hydrogen, sodium thiosulfate, potassium thiosulfate, formaldehyde, formic acid, hypophosphites, amine boranes, hydroxylamine, acetaldehyde, hydroquinone, propionaldehyde, methyl magnesium chloride, lithium aluminum hydride, thiourea, and thioacetamide.
- 54. The method of claim 31, wherein the inner electrocatalyst layer comprises a first catalyst layer and a first interfacial composite layer, and wherein said inner electrocatalyst layer is formed by diffusion catalyzation, said method comprising the steps of:
(a) providing said microfibrous fuel cell precursor, which has a bore side interior of the hollow fibrous membrane separator and a shell side exterior of the hollow fibrous membrane separator; (b) flowing an electrocatalyst precursor solution through the bore side of the microfibrous fuel cell precursor; (c) flowing, concurrently with step (b), a reducing medium through the shell side of the microfibrous fuel cell precursor; and (d) adjusting processing conditions in such a manner that said reducing medium diffuses through the hollow fibrous membrane separator of the microfibrous fuel cell precursor to react with the electrocatalyst precursor solution, so as to deposit the catalytic material (1) on a surface of said hollow fibrous membrane separator at the bore side, forming the first catalyst layer, and (2) at a location that is inside the matrix of said hollow fibrous membrane separator in proximity to said surface at the bore side, forming the first interfacial composite layer.
- 55. The method of claim 54, wherein the outer electrocatalyst layer comprises a second catalyst layer and a second interfacial composite layer, and wherein said outer electrocatalyst layer is formed by diffusion catalyzation, said method further comprising the steps of:
(e) flowing the electrocatalyst precursor solution through the shell side of the microfibrous fuel cell precursor; (f) flowing, concurrently with step (e), the reducing medium through the bore side of the microfibrous fuel cell precursor; and (g) adjusting processing conditions in such a manner that said reducing medium diffuses through the hollow fibrous membrane separator of the microfibrous fuel cell precursor to react with the electrocatalyst precursor solution, so as to deposit the catalytic material (1) on a surface of said hollow fibrous membrane separator at the shell side, forming the second catalyst layer, and (2) at a location that is inside the matrix of said hollow fibrous membrane separator in proximity to said surface at the shell side, forming the second interfacial composite layer.
- 56. The method of claim 54, wherein the outer electrocatalyst layer comprises a second catalyst layer and a second interfacial composite layer, and wherein said outer electrocatalyst layer is formed by diffusion catalyzation, said method further comprising the step of:
(e) alternating the processing conditions in such a manner that said electrocatalyst precursor solution diffuses through the hollow fibrous membrane separator of the microfibrous fuel cell precursor to react with the reducing medium, so as to deposit the catalytic material (1) on a surface of said hollow fibrous membrane separator at the shell side, forming the second catalyst layer, and (2) at a location that is inside the matrix of said hollow fibrous membrane separator in proximity to said surface at the shell side, forming the second interfacial composite layer.
- 57. The method of claim 31, wherein the inner electrocatalyst layer comprises a first catalyst layer and a first interfacial composite layer, and wherein said inner electrocatalyst layer is formed by diffusion catalyzation, said method comprising the steps of:
(a) providing said microfibrous fuel cell precursor, which has a bore side interior of the hollow fibrous membrane separator and a shell side exterior of the hollow fibrous membrane separator; (b) flowing an electrocatalyst precursor solution through the shell side of the microfibrous fuel cell precursor; (c) flowing, concurrently with step (b), a reducing medium through the bore side of the microfibrous fuel cell precursor; and (d) adjusting processing conditions in such a manner that said electrocatalyst precursor solution diffuses through the hollow fibrous membrane separator of the microfibrous fuel cell precursor to react with the reducing medium, so as to deposit the catalytic material (1) on a surface of said hollow fibrous membrane separator at the bore side, forming the first catalyst layer, and (2) at a location that is inside the matrix of said hollow fibrous membrane separator in proximity to said surface at the bore side, forming the first interfacial composite layer.
- 58. The method of claim 57, wherein the outer electrocatalyst layer comprises a second catalyst layer and a second interfacial composite layer, and wherein said outer electrocatalyst layer is formed by diffusion catalyzation, said method further comprising the steps of:
(e) flowing the electrocatalyst precursor solution through the bore side of the microfibrous fuel cell precursor; (f) flowing, concurrently with step (e), the reducing medium through the shell side of the microfibrous fuel cell precursor; and (g) adjusting processing conditions in such a manner that said electrocatalyst precursor solution diffuses through the hollow fibrous membrane separator of the microfibrous fuel cell precursor to react with the reducing medium, so as to deposit the catalytic material (1) on a surface of said hollow fibrous membrane separator at the shell side, forming the second catalyst layer, and (2) at a location that is inside the matrix of said hollow fibrous membrane separator in proximity to said surface at the shell side, forming the second interfacial composite layer.
- 59. The method of claim 57, wherein the outer electrocatalyst layer comprises a second catalyst layer and a second interfacial composite layer, and wherein said outer electrocatalyst layer is formed by diffusion catalyzation, said method further comprising the step of:
(e) alternating the processing conditions in such a manner that said reducing medium diffuses through the hollow fibrous membrane separator of the microfibrous fuel cell precursor to react with the electrocatalyst precursor solution, so as to deposit the catalytic material (1) on a surface of said hollow fibrous membrane separator at the shell side, forming the second catalyst layer, and (2) at a location that is inside the matrix of said hollow fibrous membrane separator in proximity to said surface at the shell side, forming the second interfacial composite layer.
- 60. The method of claim 31, wherein said electrocatalyst layer that comprises the catalyst layer and the interfacial composite layer is formed by ion-exchange catalyzation, said method comprising the steps of:
(a) providing said microfibrous fuel cell precursor, which has a bore side interior of the hollow fibrous membrane separator and a shell side exterior of the hollow fibrous membrane separator, said hollow fibrous membrane separator comprising an ion exchange membrane; (b) circulating a metal ion-containing solution through either sides of the microfibrous fuel cell precursor for a sufficient period of time, so as to introduce metal ions into said ion exchange membrane; (c) circulating, subsequently to step (b), an electrocatalyst precursor solution through either side of the microfibrous fuel cell precursor for a sufficient period of time, wherein said electrocatalyst precursor solution comprises noble metal ions, and wherein the noble metal ions exchange with the metal ions in said ion exchange membrane and become embedded in said ion exchange membrane; (d) flowing, subsequently to step (c), a reducing/exchanging medium through the bore side (or the shell side) of the microfibrous fuel cell precursor, wherein said reducing/exchanging medium releases and reduces the embedded noble metal ions, so as to deposit the catalytic material (1) on a surface of said hollow fibrous membrane separator at the bore side (or the shell side), forming the catalyst layer of said electrocatalyst layer, and (2) at a location that is inside the matrix of said hollow fibrous membrane separator in proximity to said surface at the bore side (or the shell side), forming the interfacial composite layer of said electrocatalyst layer.
- 61. The method of claim 60, wherein the electrocatalyst precursor solution comprises ions of at least one metal selected from the group consisting of platinum, gold, ruthenium, iridium, palladium, rhodium, nickel, iron, molybdenum, tungsten, and niobium.
- 62. The method of claim 60, wherein the electrocatalyst precursor solution comprises platinum ions.
- 63. The method of claim 62, wherein the electrocatalyst precursor solution comprises Pt(NH3)4Cl2.
- 64. The method of claim 60, wherein said metal ion-exchanging solution comprises sodium ions.
- 65. The method of claim 60, wherein said reducing/exchanging medium comprises ions for releasing the embedded noble metal ions by ion exchange, and a reducing agent for reducing the released noble metal ions.
- 66. The method of claim 65, wherein the reducing agent is selected from the group consisting of:
sodium borohydride, hydrazine, hydrogen, sodium thiosulfate, potassium thiosulfate, formaldehyde, formic acid, hypophosphites, amine boranes, hydroxylamine, acetaldehyde, hydroquinone, propionaldehyde, methyl magnesium chloride, lithium aluminum hydride, thiourea, and thioacetamide.
- 67. The method of claim 31, wherein the inner electrocatalyst layer comprises a catalyst layer and an interfacial composite layer, and wherein the inner electrocatalyst layer is formed by ion-exchange catalyzation, said method comprising the steps of:
(a) providing said microfibrous fuel cell precursor, which has a bore side interior of the hollow fibrous membrane separator and a shell side exterior of the hollow fibrous membrane separator, said hollow fibrous membrane separator comprising an ion exchange membrane; (b) circulating a metal ion-containing solution through either sides of the microfibrous fuel cell precursor for a sufficient period of time, so as to introduce metal ions into said ion exchange membrane; (c) circulating, subsequently to step (b), an electrocatalyst precursor solution through either side of the microfibrous fuel cell precursor for a sufficient period of time, wherein said electrocatalyst precursor solution comprises noble metal ions, and wherein the noble metal ions exchange with the metal ions in said ion exchange membrane and become embedded in said ion exchange membrane; (d) flowing, subsequently to step (c), a reducing/exchanging medium through the bore side of the microfibrous fuel cell precursor, wherein said reducing/exchanging medium releases and reduces the embedded noble metal ions, so as to deposit the catalytic material (I) on a surface of said hollow fibrous membrane separator at the bore side, forming the catalyst layer of the inner electrocatalyst layer, and (2) at a location that is inside the matrix of said hollow fibrous membrane separator in proximity to said surface at the bore side, forming the interfacial composite layer of the inner electrocatalyst layer.
- 68. The method of claim 31, wherein the outer electrocatalyst layer comprises a catalyst layer and an interfacial composite layer, and wherein the outer electrocatalyst layer is formed by ion-exchange catalyzation, said method comprising the steps of:
(a) providing said microfibrous fuel cell precursor, which has a bore side interior of the hollow fibrous membrane separator and a shell side exterior of the hollow fibrous membrane separator, said hollow fibrous membrane separator comprising an ion exchange membrane; (b) circulating a metal ion-containing solution through either sides of the microfibrous fuel cell precursor for a sufficient period of time, so as to introduce metal ions into said ion exchange membrane; (c) circulating, subsequently to step (b), an electrocatalyst precursor solution through either side of the microfibrous fuel cell precursor for a sufficient period of time, wherein said electrocatalyst precursor solution comprises noble metal ions, and wherein the noble metal ions exchange with the metal ions in said ion exchange membrane and become embedded in said ion exchange membrane; (d) flowing, subsequently to step (c), a reducing/exchanging medium through the shell side of the microfibrous fuel cell precursor, wherein said reducing/exchanging medium releases and reduces the embedded noble metal ions, so as to deposit the catalytic material (1) on a surface of said hollow fibrous membrane separator at the shell side, forming the catalyst layer of the outer electrocatalyst layer, and (2) at a location that is inside the matrix of said hollow fibrous membrane separator in proximity to said surface at the shell side, forming the interfacial composite layer of the outer electrocatalyst layer.
- 69. The method of claim 31, wherein both the inner and outer electrocatalyst layers are formed by ion-exchange catalyzation.
- 70. The method of claim 31, wherein the inner electrocatalyst layer comprises a catalyst layer and an interfacial composite layer, and wherein said inner electrocatalyst layer is formed by electrodeposition catalyzation, said method comprising the steps of:
(a) providing said microfibrous fuel cell precursor, which has a bore side interior of the hollow fibrous membrane separator and a shell side exterior of the hollow fibrous membrane separator, and wherein said hollow fibrous membrane separator is treated with a swelling agent; (b) flowing an electrocatalyst precursor solution through the bore side of the microfibrous fuel cell precursor, while providing an electrolyte solution on the shell side of said microfibrous fuel cell precursor; and (c) concurrently with step (b), connecting the inner current collector of the microfibrous fuel cell precursor with a negative terminal of an electrical energy source, and connecting the outer current collector of the microfibrous fuel cell precursor with a positive terminal of the electrical energy source, so as to electrically deposit the catalyst material from said electrocatalyst precursor solution, wherein a portion of said catalyst material is deposited on a surface of said hollow fibrous membrane separator at the bore side, in proximity to the inner current collector, forming the catalyst layer of the inner electrocatalyst layer, and wherein another portion of said catalyst material is integrated into the matrix of said membrane separator at a location in proximity to said surface at the bore side, forming the interfacial composite layer of the inner electrocatalyst layer.
- 71. The method of claim 70, wherein the electrolyte solution on the shell side of the microfibrous fuel cell precursor has the same composition as that of the electrocatalyst precursor solution.
- 72. The method of claim 70, wherein the electrolyte solution on the shell side of the microfibrous fuel cell precursor comprises an acid.
- 73. The method of claim 70, wherein the electrocatalyst precursor solution comprises at least one noble metal salt selected from the group consisting of: H2PtCl6, H3Pt(SO3)OH, Pt(NH3)4Cl2, K2PtCl4, RuCl3.xH2O, K2RuCl5, and K2RuCl5(NO).
- 74. The method of claim 73, wherein the electrocatalyst precursor solution comprises two or more said noble metal salts.
- 75. The method of claim 70, wherein said swelling agent comprises at least one organic solvent.
- 76. The method of claim 75, wherein said organic solvent is selected from the group consisting of C1-C8 alcohols.
- 77. The method of claim 31, wherein said electrocatalyst layer that comprises the catalyst layer and the interfacial composite layer is formed by impregnation catalyzation, said method comprising the steps of:
(a) providing said microfibrous fuel cell precursor, which has a bore side interior of the hollow fibrous membrane separator, and a shell side exterior of the hollow fibrous membrane separator; (b) applying a reducing medium to the hollow fibrous membrane separator, wherein at least a portion of the reducing medium is impregnated within said hollow fibrous membrane separator in proximity to the bore side (or the shell side) of said microfibrous fuel cell precursor; (c) contacting, subsequently to step (b), the hollow fibrous membrane separator with an electrocatalyst precursor solution, so that the electrocatalyst precursor solution reacts with the reducing medium and deposit catalytic material (1) on a surface of said hollow fibrous membrane separator at the bore side (or the shell side), forming the catalyst layer of said electrocatalyst layer, and (2) at a location that is inside the matrix of said hollow fibrous membrane separator in proximity to said surface at the bore side (or the shell side), forming the interfacial composite layer of said electrocatalyst layer.
- 78. The method of claim 77, wherein the reducing medium comprises at least one reducing agent selected from the group consisting of: sodium borohydride, hydrazine, hydrogen, sodium thiosulfate, potassium thiosulfate, formaldehyde, formic acid, hypophosphites, amine boranes, hydroxylamine, acetaldehyde, hydroquinone, propionaldehyde, methyl magnesium chloride, lithium aluminum hydride, thiourea, and thioacetamide.
- 79. The method of claim 78, wherein the reducing medium further comprises an organic solvent.
- 80. The method of claim 79, wherein the organic solvent includes a solvent selected from the group consisting of C1-C8 alcohols.
- 81. The method of claim 77, wherein the electrocatalyst precursor solution comprises at least one metal element selected from the group consisting of platinum, gold, ruthenium, iridium, palladium, rhodium, nickel, iron, molybdenum, tungsten, and niobium.
- 82. The method of claim 81, wherein the electrocatalyst precursor comprises more than one metal element.
- 83. The method of claim 77, wherein the electrocatalyst precursor solution comprises at least one noble metal salt selected from the group consisting of: H2PtCl6, K2PtCl4, RuCl3.xH2O, K2RuCl5, and K2RuCl5(NO).
- 84. The method of claim 83, wherein the electrocatalyst precursor solution comprises two or more said noble metal salts.
- 85. The method of claim 31, wherein said electrocatalyst layer that comprises the catalyst layer and the interfacial composite layer is formed by chemical deposition catalyzation, said method comprising the steps of:
(a) providing said microfibrous fuel cell precursor, which has a bore side interior of the hollow fibrous membrane separator and a shell side exterior of the hollow fibrous membrane separator; (b) flowing a mixture that comprises an electrocatalyst precursor solution and a reducing medium through the bore side (or the shell side) of the microfibrous fuel cell precursor; and (c) adjusting processing conditions in such a manner that the electrocatalyst precursor solution reacts with the reducing medium so as to deposit the catalytic material (1) on a surface of said hollow fibrous membrane separator at the bore side (or the shell side), forming the catalyst layer of said electrocatalyst layer, and (2) at a location that is inside the matrix of said hollow fibrous membrane separator in proximity to said surface at the bore side (or the shell side), forming the interfacial composite layer of said electrocatalyst layer.
- 86. The method of claim 85, wherein the electrocatalyst precursor solution comprises at least one metal element selected from the group consisting of platinum, gold, ruthenium, iridium, palladium, rhodium, nickel, iron, molybdenum, tungsten, and niobium.
- 87. The method of claim 86, wherein the electrocatalyst precursor comprises more than one metal element.
- 88. The method of claim 85, wherein the electrocatalyst precursor solution comprises at least one noble metal salt selected from the group consisting of: H2PtCl6, K2PtCl4, RuCl3.xH2O, K2RuCl5, and K2RuCl5(NO).
- 89. The method of claim 88, wherein the electrocatalyst precursor solution comprises two or more said noble metal salts.
- 90. The method of claim 88, wherein said electrocatalyst precursor solution further comprises at least one organic solvent.
- 91. The method of claim 90, wherein said organic solvent comprises a solvent selected from the group consisting of C1-C8 alcohols.
- 92. The method of claim 85, wherein the reducing medium comprises at least one reducing agent selected from the group consisting of: sodium borohydride, hydrazine, hydrogen, sodium thiosulfate, potassium thiosulfate, formaldehyde, formic acid, hypophosphites, amine boranes, hydroxylamine, acetaldehyde, hydroquinone, propionaldehyde, methyl magnesium chloride, lithium aluminum hydride, thiourea, and thioacetamide.
- 93. The method of claim 31, wherein the inner electrocatalyst layer comprises a catalyst layer and an interfacial composite layer, and wherein said inner electrocatalyst layer is formed by chemical deposition catalyzation, said method comprising the steps of:
(a) providing said microfibrous fuel cell precursor, which has a bore side interior of the hollow fibrous membrane separator and a shell side exterior of the hollow fibrous membrane separator; (b) flowing a mixture that comprises an electrocatalyst precursor solution and a reducing medium through the bore side of the microfibrous fuel cell precursor; and (c) adjusting processing conditions in such a manner that the electrocatalyst precursor solution reacts with the reducing medium so as to deposit the catalytic material (1) on a surface of said hollow fibrous membrane separator at the bore side, forming the catalyst layer of the inner electrocatalyst layer, and (2) at a location that is inside the matrix of said hollow fibrous membrane separator in proximity to said surface at the bore side, forming the interfacial composite layer of the inner electrocatalyst layer.
- 94. The method of claim 31, wherein the outer electrocatalyst layer comprises a catalyst layer and an interfacial composite layer, and wherein said outer electrocatalyst layer is formed by chemical deposition catalyzation, said method comprising the steps of:
(a) providing said microfibrous fuel cell precursor, which has a bore side interior of the hollow fibrous membrane separator and a shell side exterior of the hollow fibrous membrane separator; (b) flowing a mixture that comprises an electrocatalyst precursor solution and a reducing medium through the shell side of the microfibrous fuel cell precursor; and (c) adjusting processing conditions in such a manner that the electrocatalyst precursor solution reacts with the reducing medium so as to deposit the catalytic material (1) on a surface of said hollow fibrous membrane separator at the shell side, forming the catalyst layer of the outer electrocatalyst layer, and (2) at a location that is inside the matrix of said hollow fibrous membrane separator in proximity to said surface at the shell side, forming the interfacial composite layer of the outer electrocatalyst layer.
- 95. The method of claim 31, wherein said electrocatalyst layer that comprises the catalyst layer and the interfacial composite layer is formed by alternating catalyst/electrolyte addition catalyzation, said method comprising the steps of:
(a) providing said microfibrous fuel cell precursor, which has a bore side interior of the hollow fibrous membrane separator and a shell side exterior of the hollow fibrous membrane separator; (b) providing a catalyst composition comprising the catalytic material, and an electrolyte composition comprising the electrolyte medium; (c) applying a first layer of catalyst material onto a surface of said hollow fibrous membrane separator at the bore side (or the shell side), using the catalyst composition; (d) applying a first layer of electrolyte medium onto said first layer of catalyst material, using the electrolyte composition; (e) treating said first layer of electrolyte medium in such manner that the electrolyte medium mixes with the catalytic material underneath, forming the interfacial composite layer of said electrocatalyst layer; and (f) applying a second layer of catalyst material onto said interfacial composite layer, forming the catalyst layer of said electrocatalyst layer.
- 96. The method of claim 95, wherein said electrolyte medium comprises at least one solid electrolyte material.
- 97. The method of claim 96, wherein said solid electrolyte material comprises an ion-exchange polymer selected from the group consisting of perflurocarbon-sulfonic-acid-based polymers, polysulfone-based polymers, perfluorocarboxylic-acid-based polymers, styrene-vinyl-benzene-sulfonic-acid-based polymers, and styrene-butadiene-based polymers.
- 98. The method of claim 95, wherein said electrolyte composition contains said electrolyte medium at a concentration in a range of from about 0.1% to about 10% by total weight of said electrolyte composition.
- 99. The method of claim 95, wherein said first layer of electrolyte medium is dried and heat-treated at a temperature in a range of from about 25° C. to about 150° C.
- 100. The method of claim 95, wherein said catalytic material comprises metal selected from the group consisting of platinum, gold, ruthenium, iridium, palladium, rhodium, nickel, iron, molybdenum, tungsten, niobium, and alloys thereof.
- 101. A method of forming the microfibrous fuel cell structure of claim 4, comprising the steps of:
(a) providing a microfibrous fuel cell precursor comprising: (1) an inner current collector; (2) an outer current collector; (3) a hollow fibrous membrane separator comprising an electrolyte medium, said membrane separator being in electrical contact with both the inner and outer current collectors; (4) an inner electrocatalyst layer in contact with said inner current collector and said hollow fibrous membrane separator; and (5) an outer electrocatalyst layer in contact with said outer current collector and said hollow fibrous membrane separator, wherein both the inner and outer electrocatalyst layers are electrically conductive, wherein at least one of the inner and outer electrocatalyst layers comprises a catalyst layer comprising a catalytic material and an interfacial composite layer comprising a mixture of said catalytic material and the electrolyte medium, and wherein said electrocatalyst layer comprising the catalyst layer and the interfacial composite layer is formed by a method selected from the group consisting of diffusion catalyzation, ion-exchange catalyzation, electrodeposition catalyzation, impregnation catalyzation, chemical deposition catalyzation, alternative catalyst/electrolyte addition catalyzation, and ink-extrusion catalyzation; (b) providing an electrolyte composition comprising the electrolyte medium; (c) applying a layer of electrolyte medium onto said catalyst layer of said electrocatalyst layer, suing the electrolyte composition; and (d) treating said layer of electrolyte medium in such manner that the electrolyte medium mixes with the catalytic material of said catalyst layer, so as to form the microfibrous fuel cell structure of claim 4.
- 102. The method of claim 101, wherein said electrolyte medium comprises at least one solid electrolyte material.
- 103. The method of claim 102, wherein said solid electrolyte material comprises an ion-exchange polymer selected from the group consisting of perflurocarbon-sulfonic-acid-based polymers, polysulfone-based polymers, perfluorocarboxylic-acid-based polymers, styrene-vinyl-benzene-sulfonic-acid-based polymers, and styrene-butadiene-based polymers.
- 104. The method of claim 101, wherein said electrolyte composition contains said electrolyte medium at a concentration in a range of from about 0.1% to about 10% by total weight of said electrolyte composition.
- 105. The method of claim 101, wherein said first layer of electrolyte medium is dried and heat-treated at a temperature in a range of from about 25° C. to about 150° C.
- 106. The method of claim 101, wherein said catalytic material comprises metal selected from the group consisting of platinum, gold, ruthenium, iridium, palladium, rhodium, nickel, iron, molybdenum, tungsten, niobium, and alloys thereof.
- 107. A method of forming a fuel cell assembly, comprising the steps of:
(a) providing a fuel cell precursor assembly, wherein said fuel cell precursor assembly comprises a plurality of microfibrous fuel cell precursor units bundled together, wherein each microfibrous fuel cell precursor unit comprises an inner current collector, optionally an outer current collector, and a hollow fibrous membrane separator comprising an electrolyte medium, wherein said hollow fibrous membrane separator is in electrical contact with both the inner and outer current collector; and (b) catalyzing said fuel cell precursor assembly, so as to form an inner electrocatalyst layer and an outer electrocatalyst layer for each microfibrous fuel cell precursor unit thereof, wherein said inner electrocatalyst layer is in contact with said inner current collector and said hollow fibrous membrane separator, wherein said outer electrocatalyst layer is in contact with said outer current collector and said hollow fibrous membrane separator, and wherein both the inner and outer electrocatalyst layers are electrically conductive, and wherein at least one of the inner and outer electrocatalyst layers comprises:
(i) a catalyst layer comprising a catalytic material; and (ii) an interfacial composite layer comprising a mixture of said catalytic material and said electrolyte medium.
- 108. The method of claim 107, wherein the inner and outer electrocatalyst layers are formed simultaneously.
- 109. The method of claim 107, wherein the inner and outer electrocatalyst layers are formed sequentially.
- 110. The method of claim 107, wherein the inner electrocatalyst layer is formed by a catalyzation process selected from the group consisting of diffusion catalyzation, ion-exchange catalyzation, electrodeposition catalyzation, impregnation catalyzation, chemical deposition catalyzation, and alternating catalyst/electrolyte addition catalyzation.
- 111. The method of claim 110, wherein the outer electrocatalyst layer is formed by a catalyzation process selected from the group consisting of diffusion catalyzation, ion-exchange catalyzation, impregnation catalyzation, chemical deposition catalyzation, and alternating catalyst/electrolyte addition catalyzation.
- 112. The method of claim 111, wherein the inner and outer electrocatalyst layers are formed by two different catalyzation processes.
- 113. The method of claim 111, wherein the inner and outer electrocatalyst layers are formed by the same catalyzation process.
- 114. The method of claim 107, wherein said electrocatalyst layer that comprises the catalyst layer and the interfacial composite layer of each microfibrous fuel cell precursor unit is formed by diffusion catalyzation, said method comprising the steps of:
(a) providing said fuel cell precursor assembly, wherein each of said plurality of microfibrous fuel cell precursor units has a bore side interior of the hollow fibrous membrane separator and a shell side exterior of the hollow fibrous membrane separator; (b) sealing the bore sides of the microfibrous fuel cell precursor units from the shell sides of said microfibrous fuel cell precursor units; (c) flowing an electrocatalyst precursor solution through the bore sides (or the shell sides) of the microfibrous fuel cell precursor units; (d) flowing, concurrently with step (c), a reducing medium through the shell sides (or the bore sides) of the microfibrous fuel cell precursor units; and (e) adjusting processing conditions in such a manner that said reducing medium diffuses through the hollow fibrous membrane separator of each microfibrous fuel cell precursor unit to react with the electrocatalyst precursor solution, so as to deposit the catalytic material (1) on a surface of said hollow fibrous membrane separator at the bore side (or the shell side), forming the catalyst layer of said electrocatalyst layer for each microfibrous fuel cell precursor unit, and (2) at a location that is inside the matrix of said hollow fibrous membrane separator in proximity to said surface at the bore side (or the shell side), forming the interfacial composite layer of said electrocatalyst layer for each microfibrous fuel cell precursor unit.
- 115. The method of claim 107, wherein said electrocatalyst layer that comprises the catalyst layer and the interfacial composite layer of each microfibrous fuel cell precursor unit is formed by diffusion catalyzation, said method comprising the steps of:
(a) providing said fuel cell precursor assembly, wherein each of said plurality of microfibrous fuel cell precursor units has a bore side interior of the hollow fibrous membrane separator and a shell side exterior of the hollow fibrous membrane separator; (b) sealing the bore sides of the microfibrous fuel cell precursor units from the shell sides of said microfibrous fuel cell precursor units; (c) flowing an electrocatalyst precursor solution through the bores side (or the shell sides) of the microfibrous fuel cell precursor units; (d) flowing, concurrently with step (c), a reducing medium through the shell sides (or the bore sides) of the microfibrous fuel cell precursor units; and (e) adjusting processing conditions in such a manner that said electrocatalyst precursor solution diffuses through the hollow fibrous membrane separator of each microfibrous fuel cell precursor unit to react with the reducing medium, so as to deposit the catalytic material (1) on a surface of said hollow fibrous membrane separator at the shell side (or the bore side), forming the catalyst layer of said electrocatalyst layer for each microfibrous fuel cell precursor unit, and (2) at a location that is inside the matrix of said hollow fibrous membrane separator in proximity to said surface at the shell side (or the bore side), forming the interfacial composite layer of said electrocatalyst layer for each microfibrous fuel cell precursor unit.
- 116. The method of claim 107, wherein said electrocatalyst layer that comprises the catalyst layer and the interfacial composite layer of each microfibrous fuel cell precursor unit is formed by ion-exchange catalyzation, said method comprising the steps of:
(a) providing said fuel cell precursor assembly, wherein each of said plurality of microfibrous fuel cell precursor units has a bore side interior of the hollow fibrous membrane separator and a shell side exterior of the hollow fibrous membrane separator, and wherein said hollow fibrous membrane separator of each microfibrous fuel cell precursor unit comprises an ion exchange membrane; (b) sealing the bore sides of the microfibrous fuel cell precursor units from the shell sides of said microfibrous fuel cell precursor units; (c) circulating a metal ion-containing solution through either sides of the microfibrous fuel cell precursor units for a sufficient period of time, so as to introduce metal ions into the ion exchange membrane of each microfibrous fuel cell precursor unit; (d) circulating, subsequently to step (c), an electrocatalyst precursor solution through either side of the microfibrous fuel cell precursor units for a sufficient period of time, wherein said electrocatalyst precursor solution comprises noble metal ions, and wherein the noble metal ions exchange with the metal ions in the ion exchange membranes and become embedded in the ion exchange membranes; (e) flowing, subsequently to step (d), a reducing/exchanging medium through the bore sides (or the shell sides) of the microfibrous fuel cell precursor units, wherein said reducing/exchanging medium releases and reduces the embedded noble metal ions, so as to deposit the catalytic material (1) on a surface of said hollow fibrous membrane separator at the bore side (or the shell side), forming the catalyst layer of said electrocatalyst layer for each microfibrous fuel cell precursor unit, and (2) at a location that is inside the matrix of said hollow fibrous membrane separator in proximity to said surface at the bore side (or the shell side), forming the interfacial composite layer of said electrocatalyst layer for each microfibrous fuel cell precursor unit.
- 117. The method of claim 107, wherein the inner electrocatalyst layer of each microfibrous fuel cell precursor unit comprises a catalyst layer and an interfacial composite layer, and wherein said inner electrocatalyst layer is formed by electrodeposition catalyzation, said method comprising the steps of:
(a) providing said fuel cell precursor assembly, wherein each of said plurality of microfibrous fuel cell precursor units has a bore side interior of the hollow fibrous membrane separator and a shell side exterior of the hollow fibrous membrane separator, and wherein said hollow fibrous membrane separator of each microfibrous fuel cell precursor unit is treated with a swelling agent; (b) sealing the bore sides of the microfibrous fuel cell precursor units from the shell sides of said microfibrous fuel cell precursor units; (c) flowing an electrocatalyst precursor solution through the bore sides of the microfibrous fuel cell precursor units, while providing an electrolyte solution at the shell sides of the microfibrous fuel cell precursor units; and (d) concurrently with step (c), connecting the inner current collectors of the microfibrous fuel cell precursor units with a negative terminal of an electrical energy source, and connecting the outer current collectors of the microfibrous fuel cell precursor units with a positive terminal of the electrical energy source, so as to electrically deposit the catalyst material from said electrocatalyst precursor solution, wherein a portion of said catalyst material is deposited on a surface of the hollow fibrous membrane separator at the bore side of each microfibrous fuel cell precursor unit, in proximity to the inner current collector, forming the catalyst layer of the inner electrocatalyst layer for each microfibrous fuel cell precursor unit, and wherein another portion of said catalyst material is integrated into the matrix of said membrane separator at a location in proximity to said surface at the bore side of each microfibrous fuel cell precursor unit, forming the interfacial composite layer of the inner electrocatalyst layer for each microfibrous fuel cell precursor unit.
- 118. The method of claim 107, wherein said electrocatalyst layer that comprises the catalyst layer and the interfacial composite layer of each microfibrous fuel cell precursor unit is formed by impregnation catalyzation, said method comprising the steps of:
(a) providing said fuel cell precursor assembly, which each of said plurality of microfibrous fuel cell precursor units has a bore side interior of the hollow fibrous membrane separator, and a shell side exterior of the hollow fibrous membrane separator; (b) sealing the bore sides of the microfibrous fuel cell precursor units from the shell sides of said microfibrous fuel cell precursor units; (c) applying a reducing medium to the hollow fibrous membrane separator of each microfibrous fuel cell precursor unit, wherein at least a portion of the reducing medium is impregnated within said hollow fibrous membrane separator in proximity to the bore side (or the shell side) of each said microfibrous fuel cell precursor unit; (d) contacting, subsequently to step (c), the hollow fibrous membrane separator with an electrocatalyst precursor solution, so that the electrocatalyst precursor solution reacts with the reducing medium and deposit catalytic material (1) on a surface of said hollow fibrous membrane separator at the bore side (or the shell side), forming the catalyst layer of said electrocatalyst layer for each microfibrous fuel cell precursor unit, and (2) at a location that is inside the matrix of said hollow fibrous membrane separator in proximity to said surface at the bore side (or the shell side), forming the interfacial composite layer of said electrocatalyst layer for each microfibrous fuel cell precursor unit.
- 119. The method of claim 107, wherein said electrocatalyst layer that comprises the catalyst layer and the interfacial composite layer of each microfibrous fuel cell precursor unit is formed by chemical deposition catalyzation, said method comprising the steps of:
(a) providing said fuel cell precursor assembly, wherein each of said plurality of microfibrous fuel cell precursor units has a bore side interior of the hollow fibrous membrane separator and a shell side exterior of the hollow fibrous membrane separator; (b) sealing the bore sides of the microfibrous fuel cell precursor units from the shell sides of said microfibrous fuel cell precursor units; (c) flowing a mixture that comprises an electrocatalyst precursor solution and a reducing medium through the bore sides (or the shell sides) of the microfibrous fuel cell precursor units; and (d) adjusting processing conditions in such a manner that the electrocatalyst precursor solution reacts with the reducing medium so as to deposit the catalytic material (1) on a surface of the hollow fibrous membrane separator at the bore side (or the shell side), forming the catalyst layer of said electrocatalyst layer for each microfibrous fuel cell precursor unit, and (2) at a location that is inside the matrix of said hollow fibrous membrane separator in proximity to said surface at the bore side (or the shell side), forming the interfacial composite layer of said electrocatalyst layer for each microfibrous fuel cell precursor unit.
- 120. The method of claim 107, wherein said electrocatalyst layer that comprises the catalyst layer and the interfacial composite layer of each microfibrous fuel cell precursor unit is formed by alternating catalyst/electrolyte addition catalyzation, said method comprising the steps of:
(a) providing said fuel cell precursor assembly, wherein each of said plurality of microfibrous fuel cell precursor units has a bore side interior of the hollow fibrous membrane separator and a shell side exterior of the hollow fibrous membrane separator; (b) sealing the bore sides of the microfibrous fuel cell precursor units from the shell sides of said microfibrous fuel cell precursor units; (c) providing a catalyst composition comprising the catalytic material, and an electrolyte composition comprising the electrolyte medium; (d) applying a first layer of catalyst material onto a surface of the hollow fibrous membrane separator at the bore side (or the shell side) for each microfibrous fuel cell precursor unit, using the catalyst composition; (e) applying a first layer of electrolyte medium onto said first layer of catalyst material for each microfibrous fuel cell precursor unit, using the electrolyte composition; (f) treating said first layer of electrolyte medium in such manner that the electrolyte medium mixes with the catalytic material underneath, forming the interfacial composite layer of said electrocatalyst layer for each microfibrous fuel cell precursor unit; and (g) applying a second layer of catalyst material onto said interfacial composite layer, forming the catalyst layer of said electrocatalyst layer for each microfibrous fuel cell precursor unit.
- 121. A method of forming a fuel cell assembly, comprising the steps of:
(a) providing a plurality of microfibrous fuel cell precursor units, wherein each microfibrous fuel cell precursor unit comprises an inner current collector, optionally an outer current collector, and a hollow fibrous membrane separator comprising an electrolyte medium, wherein said hollow fibrous membrane separator is in electrical contact with both the inner and outer current collector; and (b) catalyzing each of said microfibrous fuel cell precursor units, so as to form an outer electrocatalyst layer for each microfibrous fuel cell precursor unit, wherein said outer electrocatalyst layer is in contact with the outer current collector and the hollow fibrous membrane separator; (c) bundling said plurality of microfibrous fuel cell precursor units together so as to form a fuel cell precursor assembly; and (d) catalyzing said fuel cell precursor assembly, so as to form an inner electrocatalyst layer for each microfibrous fuel cell precursor unit, wherein said inner electrocatalyst layer is in contact with the inner current collector and the hollow fibrous membrane separator, wherein both the inner and outer electrocatalyst layers are electrically conductive, and wherein at least one of the inner and outer electrocatalyst layers comprises:
(i) a catalyst layer comprising a catalytic material; and (ii) an interfacial composite layer comprising a mixture of said catalytic material and said electrolyte medium.
- 122. The method of claim 121, wherein said outer electrocatalyst layers of the microfibrous fuel cell precursor units are formed by a catalyzation process selected from the group consisting of diffusion catalyzation, ion-exchange catalyzation, impregnation catalyzation, chemical deposition catalyzation, and alternating catalyst/electrolyte addition catalyzation.
- 123. The method of claim 122, wherein said inner electrocatalyst layers of the microfibrous fuel cell precursor units are formed by a catalyzation process selected from the group consisting of diffusion catalyzation, ion-exchange catalyzation, electrodeposition catalyzation, impregnation catalyzation, chemical deposition catalyzation, and alternating catalyst/electrolyte addition catalyzation.
GOVERNMENT INTEREST
[0001] The U.S. government may own rights in the present invention, pursuant to Grant No. 70NANB1H3039 awarded by the Advanced Technology Program (ATP) of National Institute of Science and Technology (NIST).