High‐Performance Anion Exchange Membrane Water Electrolyzers Enabled by Highly Gas Permeable and Dimensionally Stable Anion Exchange Ionomers

Author:

Liu Fanghua12,Miyatake Kenji134ORCID,Tanabe Masako1,Mahmoud Ahmed Mohamed Ahmed1,Yadav Vikrant1,Guo Lin1,Wong Chun Yik1,Xian Fang1,Iwataki Toshio3,Uchida Makoto3,Kakinuma Katsuyoshi13

Affiliation:

1. Clean Energy Research Center University of Yamanashi Kofu Yamanashi 4008510 Japan

2. Research Organization for Nano and Life Innovation Waseda University Tokyo 1698555 Japan

3. Hydrogen and Fuel Cell Nanomaterials Center University of Yamanashi Kofu Yamanashi 4008510 Japan

4. Department of Applied Chemistry Waseda University Tokyo 1698555 Japan

Abstract

AbstractDesigning suitable anion exchange ionomers is critical to improving the performance and in situ durability of anion exchange membrane water electrolyzers (AEMWEs) as one of the promising devices for producing green hydrogen. Herein, highly gas‐permeable and dimensionally stable anion exchange ionomers (QC6xBA and QC6xPA) are developed, in which bulky cyclohexyl (C6) groups are introduced into the polymer backbones. QC650BA‐2.1 containing 50 mol% C6 composition shows 16.6 times higher H2 permeability and 22.3 times higher O2 permeability than that of QC60BA‐2.1 without C6 groups. Through‐plane swelling of QC650BA‐2.1 decreases to 12.5% from 31.1% (QC60BA‐2.1) while OH conductivity slightly decreases (64.9 and 56.2 mS cm−1 for QC60BA‐2.1 and QC650BA‐2.1, respectively, at 30 °C). The water electrolysis cell using the highly gas permeable QC650BA‐2.1 ionomer and Ni0.8Co0.2O in the anode catalyst layer achieves two times higher performance (2.0 A cm−2 at 1.69 V, IR‐included) than those of the previous cell using in‐house ionomer (QPAF‐4‐2.0) (1.0 A cm−2 at 1.69 V, IR‐included). During 1000 h operation at 1.0 A cm−2, the QC650BA‐2.1 cell exhibits nearly constant cell voltage with a decay rate of 1.1 µV h−1 after the initial increase of the cell voltage, proving the effectiveness of the highly gas permeable and dimensionally stable ionomer in AEMWEs.

Funder

New Energy and Industrial Technology Development Organization

Ministry of Education, Culture, Sports, Science and Technology

JKA Foundation

Japan Science and Technology Corporation

Japan Society for the Promotion of Science London

Publisher

Wiley

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