化学
离子交换
膜
离子
氢氧化物
无机化学
离子运输机
化学稳定性
氢
降级(电信)
亲核细胞
聚合物
碱土金属
解聚
离子交换树脂
碱性燃料电池
氢氧化钠
化学工程
作者
Di Zhang,Hua Fan,Guangyao Zhao,Tangfei Zheng,Qimei Yang,Wei Ding
标识
DOI:10.1073/pnas.2606372123
摘要
Conventional assessments of anion exchange membrane (AEM) stability primarily focus on static alkaline resistance, failing to capture critical degradation mechanisms under operating conditions involving ion transport. Herein, we report that dynamic ion transport processes fundamentally govern AEM stability degradation. Through 1,000 h of continuous electrically driven ion transport, severe mechanical damage, including crater formation, occurred on the ion-entry side of the AEM. This damage caused a significant decay in fuel cell performance (>40%) and a drastic 15-fold increase in hydrogen crossover, in stark contrast to the case subjected to 1,000 h of static alkaline exposure, which showed no measurable decay. In-depth investigation using in situ wide-angle X-ray scattering and concentration gradient ion transport measurements revealed that the intrusion of OH − (H 2 O) x clusters induces local overswelling, ruptures polymer chains, and attacks piperidinium cations primarily via nucleophilic reaction, diverging from the Hofmann elimination pathway dominant under static alkaline conditions.
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