亲核细胞
铜
电催化剂
组合化学
反应性(心理学)
化学
取代基
吸附
电化学
活动站点
无机化学
碳纤维
氧化还原
光化学
选择性
反应机理
反应中间体
过渡金属
碳纳米管
活动中心
双功能
机制(生物学)
配体(生物化学)
纳米技术
催化作用
作者
Ziyi Fan,Qianqian Yang,Wenjun Zhang,Huiming Wen,Kai Meng,En Zhao,Lin Dong,Haiyang Yuan,Hua Gui Yang,Zupeng Chen
出处
期刊:Angewandte Chemie
[Wiley]
日期:2025-10-17
卷期号:64 (50): e202516322-e202516322
被引量:6
标识
DOI:10.1002/anie.202516322
摘要
Abstract Electrocatalytic nucleophile oxidation (NOR) is pivotal for renewable energy and sustainable synthesis, yet the ambiguous nature of active sites hinders catalyst design. Herein, we thoroughly investigate the dynamic activation of CuO under NOR using surface voltammetry, in situ Raman, and impedance spectroscopies. Direct voltametric and spectroscopic evidences reveal that the adsorbed hydroxyl‐bridged Cu δ+ ‐oxy species (μ 2 ‐OH‐Cu δ+ ‐oxy, 2 ≤ δ ≤ 3) are the catalytically active centers for the reaction. Experimental–theoretical synergy reveals that the dynamic μ 2 ‐OH‐Cu δ+ ‐oxy interacts with stabilized OH* to form a dual‐site, dictating the structure–activity relationship. This mechanism enables near‐quantitative conversion of 5‐hydroxymethylfurfural to 2,5‐furandicarboxylic acid (97.1% yield/Faradaic efficiency) with > 100 h stability. The mechanistic insights we obtained show broad applicability across various nucleophilic substrates, where substituent effects, carbon chain flexibility, and α‐hydrogen mobility govern reactivity variations. This study establishes dynamic active center engineering as a universal strategy for designing transition‐metal (oxy)hydroxide catalysts, bridging electrocatalysis and precision organic synthesis.
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