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A unifying mechanism for cation effect modulating C1 and C2 productions from CO2 electroreduction

Title
A unifying mechanism for cation effect modulating C1 and C2 productions from CO2 electroreduction
Author(s)
Shin, Seung-JaeChoi, HansolRinge, StefanWon, Da HyeOh, Hyung-SukKim, Dong HyunLee, TaeminNam, Dae-HyunKim, HyungjunChoi, Chang Hyuck
Issued Date
2022-09
Citation
Nature Communications, v.13, no.1
Type
Article
Keywords
ALKALI-METAL CATIONSELECTROCHEMICAL REDUCTIONFREE-ENERGYSELECTIVITYINTERFACEWATERAU
ISSN
2041-1723
Abstract
Electrocatalysis, whose reaction venue locates at the catalyst-electrolyte interface, is controlled by the electron transfer across the electric double layer, envisaging a mechanistic link between the electron transfer rate and the electric double layer structure. A fine example is in the CO2 reduction reaction, of which rate shows a strong dependence on the alkali metal cation (M+) identity, but there is yet to be a unified molecular picture for that. Using quantum-mechanics-based atom-scale simulation, we herein scrutinize the M+-coupling capability to possible intermediates, and establish H+- and M+-associated ET mechanisms for CH4 and CO/C2H4 formations, respectively. These theoretical scenarios are successfully underpinned by Nernstian shifts of polarization curves with the H+ or M+ concentrations and the first-order kinetics of CO/C2H4 formation on the electrode surface charge density. Our finding further rationalizes the merit of using Nafion-coated electrode for enhanced C2 production in terms of enhanced surface charge density. CO2 reduction rate shows a strong dependence on alkali metal cation identity but a unified molecular picture for underlying mechanism requires further investigation. Using advanced molecular simulations and experimental kinetic studies, here the authors establish a unified mechanism for cation-coupled electron transfer.
URI
http://hdl.handle.net/20.500.11750/16962
DOI
10.1038/s41467-022-33199-8
Publisher
Nature Publishing Group
Related Researcher
  • 남대현 Nam, Dae-Hyun
  • Research Interests Carbon dioxide reduction; Water splitting; Energy conversion; Electrochemistry; Materials Science
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Department of Energy Science and Engineering Renewable Energy Conversion Materials Laboratory 1. Journal Articles

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