化学
密度泛函理论
催化作用
红外光谱学
氧化剂
铂金
反应中间体
甲烷
光化学
反应机理
合理设计
光谱学
红外线的
无机化学
活动站点
计算化学
化学反应
反应中间体
多相催化
化学物理
甲烷厌氧氧化
电子转移
膜
电极
电化学
屏障激活
作者
Jiafeng Du,Jinyu Ye,Chao Yang,Tian Sheng,Zhi‐You Zhou,Shi‐Gang Sun
摘要
Elucidating the mechanistic pathways of methane (CH 4 ) electrooxidation is crucial for advancing sustainable C 1 chemical synthesis. Herein, we report a comprehensive mechanistic picture of CH 4 activation and conversion on Pt/C membrane electrode assemblies (MEAs), through highly sensitive operando infrared spectroscopy and density functional theory (DFT) calculations. A characteristic vibrational band at ∼2916 cm –1, assigned to a key intermediate of *CH species formed via CH 4 dehydrogenation, was detected across a wide potential window from −0.4 to 0.3 V vs RHE. This activation step is thermodynamically favorable and nearly potential independent. In contrast, the subsequent oxidation of *CH to *CO, *COOH, and ultimately, CO 2 is strongly governed by applied potentials and competitive *OH adsorption. DFT calculations validate the energetics and site-specific interactions of these intermediates, highlighting the critical role of surface coverage and adsorbate migration in controlling reaction selectivity. These findings provide direct spectroscopic evidence for CH 4 activation on Pt surfaces and suggest that stabilizing and selectively oxidizing *CH intermediates represent key challenges for catalyst design. This study establishes a mechanistic foundation for the rational design of catalysts capable of selective CH 4 electrooxidation.
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