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Water management in anion-exchange membrane water electrolyzers under dry cathode operation

Dry cathode operation is a desired operation mode in anion-exchange membrane water electrolyzers to minimize contamination of the generated hydrogen. However, water management under such operation conditions makes it challenging to maintain reliable performance and durability. Here, we utilize high-...

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Autores principales: Koch, Susanne, Disch, Joey, Kilian, Sophia K., Han, Yiyong, Metzler, Lukas, Tengattini, Alessandro, Helfen, Lukas, Schulz, Michael, Breitwieser, Matthias, Vierrath, Severin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9297697/
https://www.ncbi.nlm.nih.gov/pubmed/35919174
http://dx.doi.org/10.1039/d2ra03846c
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author Koch, Susanne
Disch, Joey
Kilian, Sophia K.
Han, Yiyong
Metzler, Lukas
Tengattini, Alessandro
Helfen, Lukas
Schulz, Michael
Breitwieser, Matthias
Vierrath, Severin
author_facet Koch, Susanne
Disch, Joey
Kilian, Sophia K.
Han, Yiyong
Metzler, Lukas
Tengattini, Alessandro
Helfen, Lukas
Schulz, Michael
Breitwieser, Matthias
Vierrath, Severin
author_sort Koch, Susanne
collection PubMed
description Dry cathode operation is a desired operation mode in anion-exchange membrane water electrolyzers to minimize contamination of the generated hydrogen. However, water management under such operation conditions makes it challenging to maintain reliable performance and durability. Here, we utilize high-resolution in situ neutron imaging (∼6 μm effective resolution) to analyze the water content inside the membrane-electrode-assembly of an anion-exchange membrane water electrolyzer. The ion-exchange capacity (IEC) and thus hydrophilicity of the polymer binder in the cathode catalyst layer is varied to study the influence on water content in the anode (mid IEC, 1.8–2.2 meq. g(−1) and high IEC, 2.3–2.6 meq. g(−1)). The neutron radiographies show that a higher ion-exchange capacity binder allows improved water retention, which reduces the drying-out of the cathode at high current densities. Electrochemical measurements confirm a generally better efficiency for a high IEC cell above 600 mA cm(−2). At 1.5 A cm(−2) the high IEC has a 100 mV lower overpotential (2.1 V vs. 2.2 V) and a lower high frequency resistance (210 mΩ cm(−2)vs. 255 mΩ cm(−2)), which is believed to be linked to the improved cathode water retention and membrane humidification. As a consequence, the performance stability of the high IEC cell at 1 A cm(−2) is also significantly better than that of the mid IEC cell (45 mV h(−1)vs. 75 mV h(−1)).
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spelling pubmed-92976972022-08-01 Water management in anion-exchange membrane water electrolyzers under dry cathode operation Koch, Susanne Disch, Joey Kilian, Sophia K. Han, Yiyong Metzler, Lukas Tengattini, Alessandro Helfen, Lukas Schulz, Michael Breitwieser, Matthias Vierrath, Severin RSC Adv Chemistry Dry cathode operation is a desired operation mode in anion-exchange membrane water electrolyzers to minimize contamination of the generated hydrogen. However, water management under such operation conditions makes it challenging to maintain reliable performance and durability. Here, we utilize high-resolution in situ neutron imaging (∼6 μm effective resolution) to analyze the water content inside the membrane-electrode-assembly of an anion-exchange membrane water electrolyzer. The ion-exchange capacity (IEC) and thus hydrophilicity of the polymer binder in the cathode catalyst layer is varied to study the influence on water content in the anode (mid IEC, 1.8–2.2 meq. g(−1) and high IEC, 2.3–2.6 meq. g(−1)). The neutron radiographies show that a higher ion-exchange capacity binder allows improved water retention, which reduces the drying-out of the cathode at high current densities. Electrochemical measurements confirm a generally better efficiency for a high IEC cell above 600 mA cm(−2). At 1.5 A cm(−2) the high IEC has a 100 mV lower overpotential (2.1 V vs. 2.2 V) and a lower high frequency resistance (210 mΩ cm(−2)vs. 255 mΩ cm(−2)), which is believed to be linked to the improved cathode water retention and membrane humidification. As a consequence, the performance stability of the high IEC cell at 1 A cm(−2) is also significantly better than that of the mid IEC cell (45 mV h(−1)vs. 75 mV h(−1)). The Royal Society of Chemistry 2022-07-20 /pmc/articles/PMC9297697/ /pubmed/35919174 http://dx.doi.org/10.1039/d2ra03846c Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Koch, Susanne
Disch, Joey
Kilian, Sophia K.
Han, Yiyong
Metzler, Lukas
Tengattini, Alessandro
Helfen, Lukas
Schulz, Michael
Breitwieser, Matthias
Vierrath, Severin
Water management in anion-exchange membrane water electrolyzers under dry cathode operation
title Water management in anion-exchange membrane water electrolyzers under dry cathode operation
title_full Water management in anion-exchange membrane water electrolyzers under dry cathode operation
title_fullStr Water management in anion-exchange membrane water electrolyzers under dry cathode operation
title_full_unstemmed Water management in anion-exchange membrane water electrolyzers under dry cathode operation
title_short Water management in anion-exchange membrane water electrolyzers under dry cathode operation
title_sort water management in anion-exchange membrane water electrolyzers under dry cathode operation
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9297697/
https://www.ncbi.nlm.nih.gov/pubmed/35919174
http://dx.doi.org/10.1039/d2ra03846c
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