离聚物
材料科学
质子交换膜燃料电池
耐久性
电极
催化作用
颠倒
大规模运输
膜
表征(材料科学)
质子输运
箔法
膜电极组件
燃料电池
化学工程
块(置换群论)
铰链
复合材料
芯(光纤)
质子
纳米技术
制作
内阻
电池电压
电压
作者
Rongfu Hong,Lixin Xing,Ning Wang,Ling Meng,Lei Du,S. Q. Ye
出处
期刊:ACS energy letters
[American Chemical Society]
日期:2026-01-02
卷期号:11 (2): 1193-1207
被引量:14
标识
DOI:10.1021/acsenergylett.5c04013
摘要
Membrane electrode assemblies (MEAs) are the core components that determine the performance and durability of proton exchange membrane fuel cells/water electrolyzers (PEMFCs/PEMWEs). For a long time, the community has been particularly focused on catalyst development but has overlooked the critical role of ionomers, which are indispensable in the catalyst layers (CLs) within MEAs. In this Perspective, the effects of ionomers are particularly highlighted for raising local mass transport resistance and leading to complicated nanomicro structures. Therefore, the trade-off among proton conductivity, oxygen permeability, and water management is crucial in determining cell efficiency. It is believed that the conventional pursuit of a universal ionomer is obsolete. Instead, the optimal ionomer must be designed synergistically with the electrode architecture to engineer optimal triple-phase boundaries and minimize transport resistances. Future breakthroughs will hinge on system integration, advanced characterization techniques, and computational models that resolve structure–transport–performance relationships at the nano- and microscale.
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