耐久性
质子交换膜燃料电池
降级(电信)
材料科学
制氢
沉积(地质)
膜电极组件
氢
电极
化学工程
复合材料
化学
燃料电池
电气工程
工程类
阳极
有机化学
古生物学
物理化学
生物
沉积物
作者
Zhiqiao Zeng,Ryan J. Ouimet,Leonard J. Bonville,Allison Niedzwiecki,Chris Capuano,Katherine E. Ayers,Amir Peyman Soleymani,Jasna Janković,Haoran Yu,Gholamreza Mirshekari,Radenka Marić,Stoyan Bliznakov
标识
DOI:10.1149/1945-7111/ac7170
摘要
Proton exchange membrane water electrolyzers (PEMWEs) have demonstrated enormous potential as the next generation hydrogen production technology. The main challenges that the state-of-the-art PEMWEs are currently facing are excessive cost and poor durability. Understanding the failure modes in PEMWEs is a key factor for improving their durability, lowering the precious metal loading, and hence cost reduction. In this work, reactive spray deposition technology (RSDT) has been used to fabricate a membrane electrode assembly (MEA) with one order of magnitude lower Pt and Ir catalyst loadings (0.2–0.3 mg PGM cm −2 ) in comparison to the precious metal loadings in the stat-of-the-art commercial MEAs (2–3 mg PGM cm −2 ). As fabricated MEA with an active area of 86 cm 2 , has been tested for over 5000 h at steady-state conditions that are typical for an industrial hydrogen production system. Herein, we present and discuss the results from a comprehensive post-test analysis of the MEA of interest. The main degradation mechanisms, governing the performance loss in the RSDT fabricated MEA with ultra-low precious metal loadings, have been identified and discussed in detail. All failure modes are critically compared and the main degradation mechanism with the highest impact on the MEA performance loss among the others is identified.
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