材料科学
过电位
催化作用
析氧
曲面重建
密度泛函理论
拓扑(电路)
工作(物理)
纳米技术
海水
氧气
化学工程
硒化物
相(物质)
对偶(语法数字)
转化(遗传学)
理论(学习稳定性)
多稳态
架空(工程)
降级(电信)
褐铁矿
平面的
作者
Hui Li,Bingrong Wang,Yangyang Liu,Weiwei Li,Xue Zou,J.H. Chen,Yan Zhou,Hongliang Dong,Taiping Fang,Yilin Li,Runze Li,Mingliang Guo,Jinchun Tu,Chenghua Sun
标识
DOI:10.1002/adfm.202532123
摘要
ABSTRACT Dynamic surface reconstruction is a powerful route to boost oxygen evolution reaction activity, yet its typically uncontrolled nature often leads to rapid structural collapse under harsh conditions of seawater electrolysis. Herein, we introduce a programmable reconstruction strategy driven by the topological transformation of edge‐sharing octahedra‐rich Mn‐(FeCoNi) 3 Se 4 . This approach redirects destructive, abrupt reconstruction into an ordered, cascade phase transition pathway, where Fe sites are preferentially oxidized to α ‐FeOOH, then progressively evolve through β ‐NiOOH into the highly active γ ‐NiFeOOH. Such sequential evolution preserves structural integrity and, critically, activates a synergistic hydroxyl spillover mechanism. Density functional theory calculations reveal that the Fe sites efficiently capture * OH and spill over these species to adjacent Ni sites, facilitating O‐O coupling. Benefiting from this dual synergy, the catalyst delivers a low overpotential of 271 mV at 100 mA cm − 2 and ultra‐robust stability for over 1,000 h at 500 mA cm − 2 in alkaline seawater. This work presents a new paradigm for designing durable catalysts by precisely engineering reconstruction pathways through rational control of topology and reconstruction dynamics.
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