材料科学
电解
海绵
膜
电极
镍
压缩(物理)
离子交换
化学工程
离子
纳米技术
无机化学
复合材料
冶金
有机化学
电解质
物理化学
化学
生物化学
植物
工程类
生物
作者
Hye‐Rin Cho,Sun‐Woo Lee,Jin‐Hong Kim,Sung Hoon Ahn
标识
DOI:10.1002/aenm.202503164
摘要
Abstract Three‐dimensional membrane–electrode assemblies (MEAs) are widely used to improve gas transport and electrochemical performance in high‐current‐density anion exchange membrane water electrolysis (AEMWE). While simple compression offers a scalable route to form such structures, mismatch between rigid electrodes and weak membranes hampers reliable integration. This challenge is addressed by a nanofibrous nickel sponge that interlocks with pre‐swollen membranes under direct compression, forming a conformal, void‐free 3D MEA without complex or thermal processing. The sponge features a resilient fibrous architecture produced via a one‐pot wet process with trace iridium or iron precursors, ensuring catalytic function and reproducibility. With only 0.4 wt.% Ir, the Ni–Ir sponge achieves hydrogen evolution overpotentials of 18.2, 43.0, and 260 mV at 10, 100, and 1000 mA cm −2 . The Ni–Fe sponge delivers oxygen evolution overpotentials of 184, 236, and 324 mV, outperforming nickel‐foam–based benchmarks. The pressure‐optimized single stack achieves 1.3 and 3.7 A cm −2 at 1.8 and 2.0 V in 1 M KOH at 80 °C, demonstrating durable ampere‐scale hydrogen production for over 1200 h with minimal degradation. This direct compression‐induced interlocked MEA strategy overcomes interfacial and manufacturing barriers, enabling scalable integration for practical high‐current AEMWE.
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