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◆ Advanced Materials2026-04-27· Materials science

Accelerating OH <sup>−</sup> Transport for 5000‐Hour‐Stable Kilowatt‐Scale Alkaline Water Electrolysis

XU Shao-wen, Shuhui Li, Yang Hu, Zhuang Zhang, Yichao Hou, Shanshan Wu, Wei Shen, Nan Zhang, Li An, Yuanzhang Zhao, Pinxian Xi, Chun‐Hua Yan

原始摘要(英文原文)· Original abstract
ABSTRACT Enhancing the continuous supply of OH − reactants to anode catalytic sites under high current density is critical for the development of alkaline water electrolyzer (AWE). Herein, a strategy for promoting OH − transport is demonstrated by using rare earth oxide clusters (REO x ) to reconfigure interfacial hydrogen bond networks. This structural modulation achieves a nearly threefold increase in the OH − transport rate. Mechanistic analysis reveals that the incorporation of rare earth weakens the charge‐dipole interaction between the oxygen in the * OH intermediate and interfacial H 2 O molecules, promoting the transition from a rigid, ordered interfacial water structure to a more isolated, loose configuration. A linear correlation among the proportions of isolated water species, OH − transport rates, and OER activity across a series of REO x /NiCo 2 S 4 catalysts supports this mechanism. A kilowatt‐scale AWE consisting of 17 cells with a total active area of 1334 cm 2 was assembled using a DyO x /NiCo 2 S 4 anode. For the first time, the system operated stably for over 5,000 h at a current of 39.25 A under industrial operating conditions, achieving a cumulative hydrogen output of 1,400 Nm 3 . This work highlights the potential of manipulating the electrode‐electrolyte interface to enhance catalyst performance in producing industrial‐scale green hydrogen.
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Accelerating OH <sup>−</sup> Transport for 5000‐Hour‐Stable Kilowatt‐Scale Alkaline Water Electrolysis — 科研速览 Science Skim