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◆ Advanced Energy Materials2026-04-16· Materials science

Molybdate‐Engineered Interfacial Water Networks Enable Anti‐Precipitation Seawater Electrolysis for Stable Hydrogen Production

Qin Li, Wenshu Luo, Fantao Kong, Chenyang Wei, Yihan Chen, Zhiyi Lu, Changchun Ke, Xiangzhi Cui, Jianlin Shi

原始摘要(英文原文)· Original abstract
ABSTRACT Direct seawater electrolysis is a promising route for sustainable hydrogen production. However, its practical application is critically hindered by the rapid cathode passivation caused by the precipitation of insoluble Mg(OH) 2 , a fundamental issue that has remained unresolved. In this work, we propose a molybdate (MoO 4 2− )‐mediated interface engineering strategy by constructing a rich hydrogen‐bond water (HBW) electric double layer (EDL) to suppress cathodic precipitation. This interfacial modification effectively excludes solvated water (e.g., Mg[H 2 O] 6 2+ ) from participating in the HER, thereby preventing the local combination of Mg 2+ and OH − into insoluble precipitates. Implemented in a commercial membrane electrode assembly (MEA), this strategy enables stable operation for over 1,500 h at 100 mA/cm 2 and 1,400 h at 300 mA/cm 2 in unpretreated natural seawater. Mechanistic studies reveal that molybdate anions strengthen the hydrogen‐bonding network at the cathode interface, dynamically impeding Mg[H 2 O] 6 2+ permeation and increasing its diffusion barrier. Based on this principle, we further designed a cost‐effective NiMoP catalyst with immobilized MoO x substances. This catalyst exhibits exceptional HER activity and over 600 h stability in seawater at 300 mA/cm 2 . This work introduces a practical and highly effective anti‐precipitation strategy, unlocking the great potential of direct seawater electrolysis for sustainable hydrogen production.
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Molybdate‐Engineered Interfacial Water Networks Enable Anti‐Precipitation Seawater Electrolysis for Stable Hydrogen Production — 科研速览 Science Skim