Operando Infrared Spectroscopy Insights into Methane C-H Bond Activation and Conversion on Platinum
Jia-Feng Du1, Jin-Yu Ye1, Chao Yang1
1State Key Laboratory of Physical Chemistry of Solid Surfaces, Department of Chemistry, College of Chemistry and Chemical Engineering, Xiamen University, Xiamen 361005, P. R. China.
Abstract:
Elucidating the mechanistic pathways of methane (CH4) electrooxidation is crucial for advancing sustainable C1 chemical synthesis. Herein, we report a comprehensive mechanistic picture of CH4 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 CH4 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, CO2 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 CH4 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 CH4 electrooxidation.
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