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Room-temperature electrochemical water-gas shift reaction for high purity hydrogen production.


ABSTRACT: Traditional water-gas shift reaction provides one primary route for industrial production of clean-energy hydrogen. However, this process operates at high temperatures and pressures, and requires additional separation of H2 from products containing CO2, CH4 and residual CO. Herein, we report a room-temperature electrochemical water-gas shift process for direct production of high purity hydrogen (over 99.99%) with a faradaic efficiency of approximately 100%. Through rational design of anode structure to facilitate CO diffusion and PtCu catalyst to optimize CO adsorption, the anodic onset potential is lowered to almost 0 volts versus the reversible hydrogen electrode at room temperature and atmospheric pressure. The optimized PtCu catalyst achieves a current density of 70.0?mA?cm-2 at 0.6 volts which is over 12 times that of commercial Pt/C (40 wt.%) catalyst, and remains stable for even more than 475?h. This study opens a new and promising route of producing high purity hydrogen.

SUBMITTER: Cui X 

PROVIDER: S-EPMC6325145 | biostudies-literature | 2019 Jan

REPOSITORIES: biostudies-literature

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Room-temperature electrochemical water-gas shift reaction for high purity hydrogen production.

Cui Xiaoju X   Su Hai-Yan HY   Chen Ruixue R   Yu Liang L   Dong Jinchao J   Ma Chao C   Wang Suheng S   Li Jianfeng J   Yang Fan F   Xiao Jianping J   Zhang Mengtao M   Ma Ding D   Deng Dehui D   Zhang Dong H DH   Tian Zhongqun Z   Bao Xinhe X  

Nature communications 20190108 1


Traditional water-gas shift reaction provides one primary route for industrial production of clean-energy hydrogen. However, this process operates at high temperatures and pressures, and requires additional separation of H<sub>2</sub> from products containing CO<sub>2</sub>, CH<sub>4</sub> and residual CO. Herein, we report a room-temperature electrochemical water-gas shift process for direct production of high purity hydrogen (over 99.99%) with a faradaic efficiency of approximately 100%. Throu  ...[more]

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