双金属片
催化作用
氧化还原
析氧
电化学
材料科学
氧气
化学物理
化学工程
离子
Boosting(机器学习)
格子(音乐)
纳米技术
金属
电解
化学
氧气储存
动力学
电催化剂
多相催化
协同催化
原位
电解水
膜
相(物质)
亲缘关系
反应机理
作者
Siyi Li,Meng Tian,Dawei Qi,Tianxia Chen,Zhiping Liu,Shouhao Yang,Yunqi Song,Xinyu Tian,Xiangyu Liu
出处
期刊:Small
[Wiley]
日期:2026-06-19
卷期号:: e74310-e74310
摘要
ABSTRACT Precisely modulating lattice oxygen redox to activate the lattice oxygen mechanism (LOM) is paramount for surmounting the constraints of the traditional adsorbate evolution mechanism (AEM) and maximizing the catalytic activity of the oxygen evolution reaction (OER). Herein, we employ an electrochemical reconstruction strategy leveraging a bimetallic MOF precursor (NiPP/NM88B), which undergoes self‐optimized in situ transformation into a NiOOH/FeOOH active phase with dense heterointerfaces. The unsaturated metal sites generated at the interfaces elicit interfacial charge redistribution, fortifying Fe─O bond covalency and efficiently activating lattice oxygen to partake in the OER process. Concurrently, the reconstructed active phase synergistically optimizes the adsorption/desorption kinetics of * OOH intermediates at Fe and Ni sites, thereby achieving the synergistic effect of AEM and LOM to expedite catalytic dynamics. The catalyst attains current densities of 10 and 100 mA cm −2 with low overpotentials of 235 and 285 mV, respectively, while retaining stability for over 500 h. In an anion exchange membrane water electrolyzer (AEMWE), the catalyst enables prolonged stability for over 400 h at 1 A cm −2 , manifesting substantial potential for practical deployment. This work not only establishes a universal MOF‐derived paradigm for fabricating high‐performance Ni‐Fe electrocatalysts but also furnishes theoretical insights into regulating LOM through interface engineering.
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