质子交换膜燃料电池
催化作用
材料科学
化学工程
电化学
氢
制氢
质子输运
纳米技术
质子
离子交换
电导率
碳纤维
离聚物
电解水
扩散
膜
无机化学
法拉第效率
电催化剂
气体扩散电极
表面工程
膜电极组件
多相催化
热传导
电力转天然气
燃料电池
阴极
氧化还原
合理设计
离子
电解
作者
Shengjie Bai,Xufei Gu,Jianxin Dong,Jie Yang,Wenyu Zheng,Cong Guo,Ya Liu,TingTing Kong,Shaohua Shen
标识
DOI:10.1002/aenm.202506790
摘要
ABSTRACT Electrochemical CO 2 reduction reaction (CO 2 RR) in proton exchange membrane electrolyzers offers a pathway to close the carbon cycle and produce sustainable fuels and chemicals at industrial‐scale current densities. Acidic operation enables compact reactor architectures and superior single‐pass carbon utilization, yet faces persistent challenges including parasitic hydrogen evolution, catalyst corrosion and deactivation, along with constrained local CO 2 transport. This review highlights recent progress in interfacial microenvironmental engineering that reconcile acidic operation with selective and durable CO 2 conversion. We organize strategies across four critical interfaces: (1) the gas diffusion layer‐catalyst layer interface, where engineered hydrophobicity and pore structure promote CO 2 delivery while maintaining a stable three‐phase boundary; (2) the catalyst‐electrolyte electric double layer interface, where control over interfacial fields, pH gradients, and adsorbate binding energetics suppresses the hydrogen evolution reaction while promoting CO 2 RR selectivity; (3) at the catalyst layer‐membrane interface, where optimized ionomer distribution and tailored proton conductivity balance local proton availability, mitigating catalyst degradation; and (4) the integrated membrane‐electrode assembly, where harmonized ion transport, CO 2 flux, and electron conduction stabilizes the microenvironment for long‐term durability. By consolidating mechanistic insights and practical design principles, this review provides a roadmap for rational interfacial engineering to realize efficient, durable, and scalable acidic CO 2 electroreduction in PEM electrolyzers.
科研通智能强力驱动
Strongly Powered by AbleSci AI