质子交换膜燃料电池
Nafion公司
催化作用
离聚物
阳极
材料科学
电化学
电极
化学工程
导电体
膜
电导率
贵金属
气泡
膜电极组件
沉积(地质)
图层(电子)
无机化学
纳米技术
铂金
化学
金属
作者
Zicheng Zhao,Xiao Liang,Nan Lin,Zhenye Kang,Yu-Chang Hou,Yaoxin Wang,Hui Chen,Xiaoxin Zou
标识
DOI:10.1038/s41467-026-75223-1
摘要
Abstract The utilization of iridium-based anode catalysts in proton exchange membrane water electrolyzers is largely limited by the presence of electrochemically inactive “dead zones” within the catalyst layer. Here, by combining in-situ visualization of gas bubble evolution with quantitative conductivity measurements and electrochemical analysis, we establish that the limited in-plane electronic conductivity, dictated by the ionomer disrupting the conductive network of IrO 2 nanocatalysts, is the dominant factor. A sequential spray-coating strategy is further developed, which decouples the deposition of a pristine conductive catalyst layer from the ionomer and thereby preserves continuous electron transport pathways. This approach effectively activates the in-plane dead zones, resulting in membrane electrode assemblies that exhibit over 30% higher activity (4.2 A cm −2 @2.0 V@80 °C; membrane: Nafion 115) than those prepared by the conventional one-step method based on IrO 2 /ionomer mixed inks. Crucially, this approach achieves both low iridium loading (0.25 mg cm –2 ) with standard catalysts and demonstrates extended stability over 8300 hours under practical current densities.
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