安培
离解(化学)
膜
电解
电解水
催化作用
化学
环境科学
化学工程
材料科学
电气工程
工程类
电流(流体)
有机化学
电极
物理化学
电解质
生物化学
作者
Fanglin Duan,Xiaojiang Li,Fen Luo,Tong Li,Weisheng Yu,Liang Wu,Tongwen Xu
标识
DOI:10.1016/j.advmem.2025.100152
摘要
Green hydrogen production via water electrolysis is a crucial pathway for sustainable energy generation. Bipolar membrane water electrolysis (BPMWE) offers several advantages, including kinetically optimal electrode reactions across pH gradients and reduced component costs. However, challenges such as high overpotential of the BPM for water dissociation (WD) and the need for long-term stability in industrial setting hinder BPMWE development. While various metal oxide catalysts have been explored to reduce WD overpotential in BPMs, the effect of different crystalline phases of interfacial catalysts on BPM performance remains poorly understood. In this study, we investigate the catalytic effects of three titanium dioxide (TiO 2 ) phases—anatase, rutile, and amorphous—as interfacial catalysts in BPMs. The electrochemical tests reveal that rutile TiO 2 , with its uniform dispersion and minimal aggregation, offers excellent WD efficiency. The BPM incorporating rutile TiO 2 achieves current densities of 2300 mA cm -2 in pure water electrolysis and 4500 mA cm -2 in acid-base electrolysis at 3V and 80°C. Furthermore, in a flow-cell electrolyzer, it sustains stable operation for 200 hours at 1000 mA cm -2 . This work addresses critical challenges in BPM development, advancing BPMWE technology and supporting the potential for industrial-scale hydrogen production, thereby willing to contribute to the transition to sustainable energy solutions.
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