化学
双功能
阳极
过电位
电化学
双金属片
纳米片
无机化学
尿素
电极
化学工程
催化作用
纳米技术
电子转移
组合化学
作者
Zhanhong Zhao,Yi Zhou,Tingting Kang,Xinfeng Wu,Shengming Jin,Mingliang Yuan,Xinghua Chang
标识
DOI:10.1021/acs.inorgchem.5c05485
摘要
Anodic small-molecule electro-oxidation offers a promising route to couple low-energy hydrogen production with value-added chemical transformations. Nevertheless, Ni-based anodes for urea oxidation (UOR) are constrained by sluggish reconstruction, interfacial poisoning, and mass-transport limitations. Here we engineer self-supported Fe-doped Ni 3 S 2 nanosheet arrays and advance a cooperative bimetallic active-site–anionic microenvironment regulation strategy. Operando spectroscopy and electrochemical analyses reveal that Fe dopants act as an electronic pump, accelerating the formation of a Ni(Fe)OOH surface skin and weakening Ni–S bonds to trigger anion-derived reconstruction. Under operating potentials, an operando-generated interfacial SO 4 2– layer mediates proton-coupled electron transfer while electrostatically suppressing carbonate adsorption, thereby alleviating the single-site Sabatier constraint via multisite synergy and enhancing activity and selectivity. The optimized electrode delivers 200 mA cm –2 at 1.355 V (vs RHE) for UOR and exhibits bifunctional capability with a hydrogen-evolution overpotential of 59 mV at 10 mA cm –2 . This mechanism-driven paradigm of interfacial gating and coreconstruction provides a transferable blueprint for UOR and, more broadly, anodic small-molecule electro-oxidations.
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