材料科学
密度泛函理论
拉曼光谱
纳米片
X射线光电子能谱
催化作用
同步加速器
析氧
光谱学
吸收光谱法
再分配(选举)
吸收(声学)
工作(物理)
化学物理
X射线吸收光谱法
氧气
过渡金属
调制(音乐)
电流密度
电子结构
纳米技术
分子物理学
光电子学
时间演化
同步辐射
分子振动
曲面重建
作者
Liling Liao,Yong Zhang,Wenlu Tang,Junting Lin,Yongxin Zhu,Lu Chen,Furui Tan,Zhiming Cui,Haiqing Zhou,Deliang Chen
摘要
ABSTRACT Electron‐transfer‐regulated interfacial reconstruction has emerged as a defining feature of alkaline oxygen evolution electrocatalysis, yet its mechanistic origin under industrial‐level current densities remains poorly understood. Here, we design a self‐supported W─FeOOH/WO x nanosheet array, in which interfacial electronic modulation stabilizes Fe‐driven reconstruction while governing catalytic activity and durability. Operando X‐ray photoelectron spectroscopy and Raman spectroscopy, together with synchrotron X‐ray absorption spectroscopy, reveal that the W─Fe heterointerface triggers a cooperative reconstruction process, leading to the formation of a Fe/Ni oxyhydroxide‐rich reconstructed layer coupled with residual WO x domains. X‐ray absorption spectroscopy further the evolution of Fe toward FeOOH‐like coordination environments while preserving the local WO x framework. Density functional theory calculations reveal that the reconstructed heterointerface shifts the Fe d‐band center upward and induces adsorption‐induced charge redistribution at W sites (Δ ≈ 0.223 e − upon OOH * adsorption), thereby lowering the energy barrier of the rate‐determining * OOH → O 2 step to 1.87 eV. Consequently, the catalyst achieves 1000 and 2000 mA cm −2 at low overpotentials of 300 and 340 mV, respectively, and sustains stable operation for 250 h at 2000 mA cm −2 with a decay rate of 0.08 mV h −1 . This work establishes a design principle for stabilizing dynamic reconstruction at ampere‐level current densities.
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