催化作用
甲酸
电化学
氧化还原
化学
铂金
无机化学
电催化剂
反应机理
偶联反应
贵金属
合作性
氧气
化学反应
半反应
电化学电位
金属
化学工程
电化学电池
反应中间体
过渡金属
作者
Xiangdong Xu,William C. Howland,Daniel Martín‐Yerga,Cole Cadaram,Deiaa M. Harraz,Geoff D. West,Patrick R. Unwin,Yogesh Surendranath
标识
DOI:10.1038/s41929-026-01486-y
摘要
Thermochemical redox catalysis is critical to a wide array of key chemical transformations and can proceed via the coupling of two electrochemical half-reactions. This electrochemical mechanism is exemplified by the platinum-catalysed aerobic oxidation of formic acid, wherein the oxygen reduction reaction is coupled to the formic acid oxidation reaction. Here using scanning electrochemical cell microscopy, we show there are grain-dependent variations in catalytic rates for the oxygen reduction and formic acid oxidation reactions at a platinum catalyst. Quantitative spatially resolved images of catalytic rates imply inter-grain cooperativity during ensemble thermochemical catalysis via lateral current flows that galvanically couple disparate active sites. Moreover, by comparing current-potential profiles of the half-reactions in isolation and in the presence of both reactants, we reveal additional site-specific chemical interactions that modify the two constituent half-reactions. These studies establish a methodology that exposes how electrochemical half-reactions couple and interact across surface structures to enable redox transformations.
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