Contacting assembly of a bipolar plate and method for contacting a bipolar plate
US-2024136543-A1 · Apr 25, 2024 · US
US9627695B2 · US · B2
| Field | Value |
|---|---|
| Publication number | US-9627695-B2 |
| Application number | US-201113810298-A |
| Country | US |
| Kind code | B2 |
| Filing date | Jul 14, 2011 |
| Priority date | Jul 16, 2010 |
| Publication date | Apr 18, 2017 |
| Grant date | Apr 18, 2017 |
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An electrical conductive member ( 20 ) includes a metal substrate ( 21 ), an intermediate layer ( 23 ) formed on the metal substrate ( 21 ), and an electrical conductive layer ( 25 ) formed on the intermediate layer ( 23 ). The intermediate layer ( 23 ) contains a constituent of the metal substrate ( 21 ), a constituent of the electrical conductive layer ( 25 ), and a crystallization inhibiting component that inhibits crystallization in the intermediate layer ( 23 ). According to this configuration, the electrical conductive member having excellent electrical conductivity and resistance to corrosion can be obtained.
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The invention claimed is: 1. An electrical conductive member, comprising: a metal substrate; an intermediate layer formed on the metal substrate and having a thickness of 30 nm to 200 nm; and an electrical conductive layer formed on the intermediate layer, wherein the intermediate layer comprises a constituent of the metal substrate; a constituent of the electrical conductive layer; and at least one element selected from the group consisting of helium, argon, krypton, boron, phosphorus, silicon, carbon and germanium, and wherein a content ratio of the at least one element in the intermediate layer is in a range from 3 to 5 atom %. 2. The electrical conductive member according to claim 1 , wherein the intermediate layer has at least one of an amorphous structure and a quasi-crystalline structure having a crystallite diameter smaller than a crystallite diameter of each of the metal substrate and the electrical conductive layer. 3. The electrical conductive member according to claim 1 , wherein the metal substrate is constituted by aluminum or an aluminum alloy. 4. A separator for a fuel cell comprising the electrical conductive member according to claim 1 , wherein the electrical conductive layer in the electrical conductive member is located on an electrolyte side. 5. A polymer electrolyte fuel cell, comprising: a membrane electrode assembly comprising a polymer electrolyte membrane; an anode catalyst layer and a cathode catalyst layer that interpose the polymer electrolyte membrane therebetween; and an anode gas diffusion layer and a cathode gas diffusion layer that interpose the anode catalyst layer, the cathode catalyst layer and the polymer electrolyte membrane therebetween, and an anode separator and a cathode separator that interpose the membrane electrode assembly therebetween, wherein at least one of the anode separator and the cathode separator is the separator for the fuel cell according to claim 4 . 6. The electrical conductive member according to claim 1 , wherein the metal substrate comprises aluminum or aluminum alloy. 7. The electrical conductive member according to claim 1 , wherein the at least one element is selected from the group consisting of boron, phosphorus, silicon, carbon and germanium. 8. The electrical conductive member according to claim 1 , wherein: the at least one element comprises a first element and a second element, the first element is at least one element selected from the group consisting of helium, argon and krypton, and the second element is at least one element selected from the group consisting of boron, phosphorus, silicon, carbon and germanium. 9. A method for manufacturing an electrical conductive member, comprising: removing an oxide film on a surface of a metal substrate; forming an intermediate layer on the metal substrate after removing the oxide film; and forming an electrical conductive layer on the intermediate layer after forming the intermediate layer, wherein the intermediate layer comprises a constituent of the metal substrate; a constituent of the electrical conductive layer; and at least one element selected from the group consisting of helium, argon, krypton, boron, phosphorus, silicon, carbon and germanium, wherein the intermediate layer is formed by sputtering under a presence of the at least one element while a negative bias voltage of 100 V to 500 V is applied to the metal substrate, and wherein the intermediate layer has a thickness of 30 nm to 200 nm. 10. The method for manufacturing an electrical conductive member according to claim 9 , wherein the metal substrate is constituted by aluminum or an aluminum alloy. 11. The method for manufacturing an electrical conductive member according to claim 9 , wherein when the at least one element is selected from the group consisting of boron, phosphorus, silicon, carbon and germanium, the intermediate layer is formed by sputtering using the constituent of the electrical conductive layer and the at least one element that is selected from the group consisting of boron, phosphorus, silicon, carbon and germanium as targets. 12. The method for manufacturing an electrical conductive member according to claim 9 , wherein the metal substrate comprises aluminum or aluminum alloy. 13. The method for manufacturing an electrical conductive member according to claim 9 , wherein the at least one element is selected from the group consisting of boron, phosphorus, silicon, carbon and germanium. 14. The method for manufacturing an electrical conductive member according to claim 9 , wherein: the at least one element comprises a first element and a second element, the first element is at least one element selected from the group consisting of helium, argon and krypton, and the second element is at least one element selected from the group consisting of boron, phosphorus, silicon, carbon and germanium.
Conductive · CPC title
Crystalline · CPC title
Metals or alloys · CPC title
in the form of layered or coated products · CPC title
Inert, i.e. inert to chemical degradation, corrosion · CPC title
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