Activating in-plane dead zones of anode catalyst layers in proton exchange membrane water electrolyzers
Abstract
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.
Article Details
Authors (8)
Zicheng Zhao
Xiao Liang
Department of Chemistry
Nan Lin
Zhenye Kang
Yuchang Hou
State Key Laboratory of Inorganic Synthesis and Preparative Chemistry, College of Chemistry
Yaoxin Wang
Hui Chen
Xiaoxin Zou
State Key Laboratory of Inorganic Synthesis and Preparative Chemistry, College of Chemistry