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How palladium inhibits CO poisoning during electrocatalytic formic acid oxidation and carbon dioxide reduction

Chemistry

How palladium inhibits CO poisoning during electrocatalytic formic acid oxidation and carbon dioxide reduction

X. Chen, L. P. Granda-marulanda, et al.

Discover how palladium electrocatalysts combat CO poisoning during formic acid oxidation and CO2 reduction, thanks to the innovative research by Xiaoting Chen, Laura P. Granda-Marulanda, Ian T. McCrum, and Marc T. M. Koper. This study unveils the protective mechanisms of high formate coverage and the effects of CO precursor adsorption on catalytic processes.... show more
Abstract
Development of reversible and stable catalysts for the electrochemical reduction of CO2 is of great interest. Here, we elucidate the atomistic details of how a palladium electrocatalyst inhibits CO poisoning during both formic acid oxidation to carbon dioxide and carbon dioxide reduction to formic acid. We compare results obtained with a platinum single-crystal electrode modified with and without a single monolayer of palladium. We combine (high-scan-rate) cyclic voltammetry with density functional theory to explain the absence of CO poisoning on the palladium-modified electrode. We show how the high formate coverage on the palladium-modified electrode protects the surface from poisoning during formic acid oxidation, and how the adsorption of CO precursor dictates the delayed poisoning during CO2 reduction. The nature of the hydrogen adsorbed on the palladium-modified electrode is considerably different from platinum, supporting a model to explain the reversibility of this reaction. Our results help in designing catalysts for which CO poisoning needs to be avoided.
Publisher
Nature Communications
Published On
Jan 10, 2022
Authors
Xiaoting Chen, Laura P. Granda-Marulanda, Ian T. McCrum, Marc T. M. Koper
Tags
palladium electrocatalyst
CO poisoning
formic acid oxidation
CO2 reduction
cyclic voltammetry
density functional theory
hydrogen adsorption
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