亲核细胞
化学
脱氢
催化作用
析氧
碳酸氢盐
双功能
电化学
脱质子化
镍
无机化学
组合化学
电合成
氧化还原
光化学
氧化物
制氢
亲核加成
双功能催化剂
动力学
氢
电泳剂
作者
Xiaokang Liu,Chengxiang Shi,Gong Zhang,Ruijie Gao,Lun Pan,Xiangwen Zhang,Zhen‐Feng Huang,Jinlong Gong,Ji‐Jun Zou
标识
DOI:10.1038/s41467-025-66298-3
摘要
Nucleophilic oxidation reactions (NORs) are key for high-value organics in electrosynthesis, but limited by slow dehydrogenation kinetics and competing oxygen evolution reactions (OER). While low-coordinated Ni species exhibit enhanced activity in rate-determining electrochemical deprotonation, they suffer irreversible oxidation with rapid performance degradation. Herein, we develop a class of oxyanion-stabilized low-coordinated Ni catalysts for highly efficient and durable oxidation of diverse nucleophiles including urea, methanol, and biomass-derived 5-hydroxymethylfurfural. Bicarbonate ligands form an electrostatically repulsive microenvironment, suppressing parasitic OER and Ni over-oxidation via dynamic ligand-cation coordination. These mediators form bifunctional channels, linking Ni2-δ/Ni3-δ reversible transition-based deprotonation and nucleophilic H-transfer, boosting dehydrogenation. A prototype catalyst engineered with bicarbonate ligands via electrochemical pre-reduction achieves 500 mA cm-2 at 1.42 V (versus reversible hydrogen electrode) for urea oxidation and sustains stability for 1100 hours at 100 mA cm-2. Scaling to 100 cm2 anion-exchange membrane reactor yields H2 and valorized organics, showing sustainable electrosynthesis potential.
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