复合数
电解
碱性水电解
电解水
膜
Zeta电位
化学工程
材料科学
纳米颗粒
粒子(生态学)
相(物质)
纳米技术
联轴节(管道)
分子动力学
纳米尺度
工作(物理)
氢
电极
碱金属
陶瓷
钛酸酯
作者
Meng Nie,Jiangping Song,Tian Tian,Shengqiu Zhao,Sixiu Zeng,Haolin Tang
标识
DOI:10.1002/adsu.202500341
摘要
Abstract Developing high‐performance, ultra‐thin membranes for alkaline water electrolysis (AWE) remains challenging due to organic‐inorganic phase separation under harsh conditions. Here, an ultrathin (≈120 µm) polyether sulfone/zirconia (PES/ZrO 2 ) composite membrane is designed via interfacial engineering using a titanate coupling agent (CHOPT). The modified ZrO 2 exhibits opposite Zeta potential to PES, enabling electrostatic self‐adsorption that strengthens with alkalinity, ensuring durable nanoparticle anchoring. Incorporating a PPS mesh further enhances mechanical stability. The optimized membrane achieves exceptional performance: ultra‐low area resistance (0.09 Ω cm 2 ), high bubble point pressure (4.55 bar), and excellent hydrophilicity. In 30 wt% KOH at 80 °C, the membrane enables electrolyzer operation at 1.82–1.88 V (1.0 A cm −2 ) with 150‐hour stability. Additionally, theoretical calculations and molecular dynamics simulations provide insights into the mechanisms behind the membrane's outstanding performance. This work provides a scalable strategy for durable, high‐efficiency AWE membranes, addressing critical challenges in green hydrogen production.
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