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Solvent-mediated Outer-sphere CO Electro-reduction Mechanism over the Ag111 Surface

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Journal Chem Sci
Specialty Chemistry
Date 2022 Apr 18
PMID 35432905
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Abstract

The electrocatalytic CO reduction reaction (CORR) is one of the key technologies of the clean energy economy. Molecular-level understanding of the CORR process is instrumental for the better design of electrodes operable at low overpotentials with high current density. The catalytic mechanism underlying the turnover and selectivity of the CORR is modulated by the nature of the electrocatalyst, as well as the electrolyte liquid, and its ionic components that form the electrical double layer (EDL). Herein we demonstrate the critical non-innocent role of the EDL for the activation and conversion of CO at a high cathodic bias for electrocatalytic conversion over a silver surface as a representative low-cost model cathode. By using a multiscale modeling approach we demonstrate that under such conditions a dense EDL is formed, which hinders the diffusion of CO towards the Ag111 electrocatalyst surface. By combining DFT calculations and molecular dynamics simulations we identify favorable pathways for CO reduction directly over the EDL without the need for adsorption to the catalyst surface. The dense EDL promotes homogeneous phase reduction of CO electron transfer from the surface to the electrolyte. Such an outer-sphere mechanism favors the formation of formate as the CORR product. The formate can undergo dehydration to CO a transition state stabilized by solvated alkali cations in the EDL.

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References
1.
Xu S, Carter E . Theoretical Insights into Heterogeneous (Photo)electrochemical CO Reduction. Chem Rev. 2018; 119(11):6631-6669. DOI: 10.1021/acs.chemrev.8b00481. View

2.
Wang Y, Liu J, Wang Y, Al-Enizi A, Zheng G . Tuning of CO Reduction Selectivity on Metal Electrocatalysts. Small. 2017; 13(43). DOI: 10.1002/smll.201701809. View

3.
Resasco J, Chen L, Clark E, Tsai C, Hahn C, Jaramillo T . Promoter Effects of Alkali Metal Cations on the Electrochemical Reduction of Carbon Dioxide. J Am Chem Soc. 2017; 139(32):11277-11287. DOI: 10.1021/jacs.7b06765. View

4.
Zhang S, Fan Q, Xia R, Meyer T . CO Reduction: From Homogeneous to Heterogeneous Electrocatalysis. Acc Chem Res. 2020; 53(1):255-264. DOI: 10.1021/acs.accounts.9b00496. View

5.
Zhang F, Co A . Direct Evidence of Local pH Change and the Role of Alkali Cation during CO Electroreduction in Aqueous Media. Angew Chem Int Ed Engl. 2019; 59(4):1674-1681. DOI: 10.1002/anie.201912637. View