DOE OSTI · 1973197
Surface Engineering of Copper Catalyst through CO* Adsorbate
Abstract
The electrochemical reduction of CO 2 with Cu-based catalysts depends intimately on the instantaneous local chemical environment of the catalyst-electrolyte interface. This microenvironment fluctuates according to the concentration of surface-adsorbed competing reaction intermediates and the applied electrode potential. In practice, disentangling these factors is exceedingly challenging, yet they critically determine the electrocatalyst efficiency and selectivity. Using grand canonical quantum-classical hybrid calculations, we quantify the complex interdependence between electrode potential, CO* coverage, and the interfacial field strength. Here we show that the often overlooked CO* coverage effect in fact strongly influences the field strength, with a magnitude change exceeding 1V/Å at certain potentials; among other effects, this change should lower the CO* dimerization barrier that dictates selectivity toward multi-carbon products. Beyond showcasing the importance of surface coverage for CO2 reduction, our results highlight the power of surface additives to modulate interfacial fields toward tailored electrochemical pathways.
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Yu, Henry, Weitzner, Stephen E., Varley, Joel B., Wood, Brandon C., Akhade, Sneha A.. 2023-01-23. Surface Engineering of Copper Catalyst through CO* Adsorbate. https://doi.org/10.1021/acs.jpcc.2c06456
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