Method for Manufacturing Metal Plate, Metal Plate, Electrochemical Element, Electrochemical Module, Electrochemical Device, Energy System, Solid Oxide Fuel Cell, and Solid Oxide Electrolytic Cell
US-2021151774-A1 · May 20, 2021 · US
US12529151B2 · US · B2
| Field | Value |
|---|---|
| Publication number | US-12529151-B2 |
| Application number | US-202117914176-A |
| Country | US |
| Kind code | B2 |
| Filing date | Mar 31, 2021 |
| Priority date | Mar 31, 2020 |
| Publication date | Jan 20, 2026 |
| Grant date | Jan 20, 2026 |
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An electrolysis cell unit capable of efficiently electrolyzing water and carbon dioxide is obtained. An electrolysis cell unit includes at least an electrolysis cell in which an electrode layer and a counter electrode layer are formed with an electrolyte layer interposed therebetween and a discharge path for discharging hydrogen generated in the electrode layer, in which the electrolysis cell being formed in a thin layer on a support and a reverse water-gas shift reaction unit that generates carbon monoxide using carbon dioxide and the hydrogen by a reverse water-gas shift reaction being provided in at least a portion of the discharge path.
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The invention claimed is: 1 . An electrolysis cell unit comprising at least: an electrolysis cell in which an electrode layer and a counter electrode layer are formed with an electrolyte layer interposed therebetween; and a discharge path configured to discharge hydrogen generated in the electrode layer, wherein the electrolysis cell is formed with the electrode layer having a thickness of 1 to 100 μm on one surface of a support, wherein a gas flow path is provided along another surface of the support, wherein a plurality of through holes are provided to penetrate the support from the one surface to the other surface of the support, wherein the gas flow path forms an electrode layer-side gas supply path configured to supply water and carbon dioxide to the electrode layer and the gas flow path acts as the discharge path configured to discharge the hydrogen generated in the electrode layer, and wherein a reverse water-gas shift reaction unit, configured to generate carbon monoxide using the carbon dioxide and the hydrogen by a reverse water-gas shift reaction, is provided in at least a portion of the discharge path. 2 . The electrolysis cell unit according to claim 1 , wherein the support is a metal. 3 . The electrolysis cell unit according to claim 1 , wherein the reverse water-gas shift reaction unit is provided in at least a portion of an inside of the plurality of through holes. 4 . The electrolysis cell unit according to claim 1 , wherein the reverse water-gas shift reaction unit is provided on a surface of the support different from a surface on which the electrolysis cell is formed. 5 . The electrolysis cell unit according to claim 1 , further comprising a separator that separates hydrogen generated in the electrode layer and oxygen generated in the counter electrode layer, wherein the reverse water-gas shift reaction unit is provided in at least a portion of the separator on a discharge path side of the hydrogen. 6 . The electrolysis cell unit according to claim 5 , wherein the separator is a metal. 7 . The electrolysis cell unit according to claim 1 , wherein a reverse water-gas shift catalyst contained in the reverse water-gas shift reaction unit is a catalyst in which a metal or a metal oxide is supported on a carrier. 8 . The electrolysis cell unit according to claim 1 , wherein a reverse water-gas shift catalyst contained in the reverse water-gas shift reaction unit is a catalyst containing at least one of platinum, nickel, and iron. 9 . The electrolysis cell unit according to claim 7 , wherein the carrier is a carrier containing a ceria-based metal oxide or a zirconia-based metal oxide as a main component. 10 . An electrolysis cell device comprising: the electrolysis cell unit according to claim 1 ; an electrolysis raw material supply unit that supplies water and/or steam and carbon dioxide to the electrolysis cell unit; and a power supply unit that supplies electric power. 11 . A hydrocarbon production system comprising: the electrolysis cell unit according to claim 1 ; and a hydrocarbon synthesis reaction unit that generates a hydrocarbon by at least reacting the hydrogen with the carbon monoxide. 12 . A hydrocarbon production system comprising: the electrolysis cell device according to claim 10 ; and a hydrocarbon synthesis reaction unit that generates a hydrocarbon by at least reacting the hydrogen with the carbon monoxide.
Supplying products to non-electrochemical reactors that are combined with the electrochemical cell, e.g. Sabatier reactor · CPC title
Carbon monoxide · CPC title
by electrolysis of water · CPC title
with diaphragms · CPC title
based on inorganic materials · CPC title
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