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Electric Field Effects in Electrochemical CO<sub>2</sub> Reduction

ACS Catalysis · 2016 · Vol. 6(10) · pp. 7133–7139
Leanne D. ChenMakoto UrushiharaKaren ChanJens K. Nørskov

Abstract

Electrochemical reduction of CO2 has the potential to reduce greenhouse gas emissions while providing energy storage and producing chemical feedstocks. A mechanistic understanding of the process is crucial to the discovery of efficient catalysts, and an atomistic description of the electrochemical interface is a major challenge due to its complexity. Here, we examine the CO2 → CO electrocatalytic pathway on Ag(111) using density functional theory (DFT) calculations and an explicit model of the electrochemical interface. We show that the electric field from solvated cations in the double layer and their corresponding image charges on the metal surface significantly stabilizes key intermediates—*CO2 and *COOH. At the field-stabilized sites, the formation of *CO is rate-determining. We present a microkinetic model that incorporates field effects and electrochemical barriers from ab initio calculations. The computed polarization curves show reasonable agreement with experiment without fitting any parameters.

CO2 Reduction Techniques and CatalystsIonic liquids properties and applicationsAdvanced Thermoelectric Materials and DevicesDensity functional theoryElectrochemistryAb initioChemistryPolarization (electrochemistry)CatalysisElectric fieldChemical physicsAb initio quantum chemistry methodsComputational chemistry

Funding

  • U.S. Department of Energy
  • Office of Science
  • Natural Sciences and Engineering Research Council of Canada
  • Basic Energy Sciences
Citations
651
FWCI
12.78
field-weighted impact
References
64
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99%
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