Affiliation:
1. Energy Technology Area Lawrence Berkeley National Laboratory Berkeley CA 94720 USA
2. Department of Chemical & Biomolecular Engineering University of California Berkeley Berkeley CA 94720 USA
3. Department of Chemical and Biomolecular Engineering National Fuel Cell Research Center University of California Irvine Irvine CA 92697 USA
Abstract
AbstractGreen hydrogen, produced via water electrolysis using renewable electricity, will play a crucial role in decarbonizing industrial and heavy‐duty transportation sectors. Anion exchange membrane water electrolyzers (AEMWEs) can overcome many of the performance and cost limitations of incumbent technologies, however, still suffer from durability challenges due to oxidative instability of anion‐exchange ionomers. Herein, the use of an electro‐active porous transport layer as anode (PTL‐electrode) is demonstrated to enable efficient and durable AEMWEs. The stainless‐steel PTL‐electrodes are shown to have superior performance and durability compared to traditional catalyst layers containing ionomer and nanoparticle catalysts. An AEMWE cell operating at 2 A cm−2 for over 600 h exhibited a degradation rate of just 5 µV h−1. During operation, the surface composition of the stainless steel transforms into a mixture of iron and nickel oxyhydroxides, contributing to enhanced oxygen‐evolution reaction activity. The combination of experimental work and modeling elucidates how the bulk structure of the PTL‐electrode offers an additional design dimension to further improve electrolyzer performance. Lastly, a surface modification strategy is applied to a PTL‐electrode to achieve an even higher performing AEMWE (2.3 vs 2.0 A cm−2 at 1.8 V). Overall, this work lays out pathways toward more efficient, durable, and affordable AEMWEs.
Funder
Hydrogen and Fuel Cell Technologies Office
Advanced Light Source
U.S. Department of Energy
Subject
General Materials Science,Renewable Energy, Sustainability and the Environment
Cited by
12 articles.
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