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      Hydrogen Crossover in PEM Water Electrolysis at Current Densities up to 10 A cm −2

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      Journal of The Electrochemical Society
      The Electrochemical Society

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          Abstract

          Hydrogen crossover poses a critical issue in terms of the safe and efficient operation in polymer electrolyte membrane water electrolysis (PEMWE). The impact of key operating parameters such as temperature and pressure on crossover was investigated in the past. However, many recent studies suggest that the relation between the hydrogen crossover flux and the current density is not fully resolved. This study investigates the hydrogen crossover of PEMWE cells using a thin Nafion 212 membrane at current densities up to 10 A cm −2 and cathode pressures up to 10 bar, by analysing the anode product gas with gas chromatography. The results show that the hydrogen crossover flux generally increases over the entire current density range. However, the fluxes pass through regions with varying slopes and flatten in the high current regime. Only considering hydrogen diffusion as the single transport mechanism is insufficient to explain these data. Under the prevailing conditions, it is concluded that the electro-osmotic drag of water containing dissolved hydrogen should be considered additionally as a hydrogen transport mechanism. The drag of water acts opposite to hydrogen diffusion and has an attenuating effect on the hydrogen crossover in PEMWE cells with increasing current densities.

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          PEM electrolysis for production of hydrogen from renewable energy sources

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            Pressurized PEM water electrolysis: Efficiency and gas crossover

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              The water content dependence of electro-osmotic drag in proton-conducting polymer electrolytes

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                Author and article information

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                Journal
                Journal of The Electrochemical Society
                J. Electrochem. Soc.
                The Electrochemical Society
                0013-4651
                1945-7111
                September 20 2022
                September 01 2022
                September 20 2022
                September 01 2022
                : 169
                : 9
                : 094507
                Article
                10.1149/1945-7111/ac908c
                d780b4fd-f084-4bde-83b7-050cff493284
                © 2022

                http://creativecommons.org/licenses/by/4.0/

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