耐久性
催化作用
化学工程
材料科学
电解
离子交换
膜
电解水
质子交换膜燃料电池
制氢
氢
无机化学
化学
热交换器
碱性水电解
作者
Irina Galkina,Alaa Y. Faid,Nikita Grigorev,Wulyu Jiang,Patrick Borowski,Svein Sunde,Meital Shviro,Werner Lehnert,Fabian Scheepers,Anna K. Mechler
标识
DOI:10.1016/j.ijhydene.2026.155383
摘要
The optimization of anion exchange membrane water electrolyzers (AEMWEs) relies on active, stable catalysts and well-designed catalyst layers. This study investigates the impact of tumbler ball milling on a nickel–iron layered double hydroxide (Ni 3 Fe-LDH) catalyst for the oxygen evolution reaction (OER). Milling reduced catalyst clusters from 1-100 μm to 30 nm, increasing the geometrical surface area by 8.8-fold. Optimized solvent compositions and dispersing times enhanced catalyst dispersion stability. Tailoring the electrode structure reduced internal electronic resistances and charge-transfer resistances of the membrane electrode assembly. The optimized electrode exhibited outstanding single-cell performance, reaching 1.83 V at 2 A cm −2 with stable durability of 1000 h and a minor degradation rate of 62 μV h −1 . This work presents a scalable approach to NiFe-LDH catalyst treatment and dispersion control, demonstrating the importance of research and optimization across scales to improve performance and support the practical advancement of hydrogen technologies.
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