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Mechanistic insights into chemical reduction of CO2 by reverse water-gas shift reaction on Ru(0001) surface: The water promotion effect.

Authors :
Sathishkumar, Nadaraj
Wu, Shiuan-Yau
Chen, Hsin-Tsung
Source :
Applied Surface Science. Apr2022, Vol. 581, pN.PAG-N.PAG. 1p.
Publication Year :
2022

Abstract

[Display omitted] • Discovery of electrocatalytic materials for CO 2 reduction is essential to mitigate greenhouse effect. • Chemical reduction of CO 2 by reverse water-gas shift reaction on the Ru(0001) surface has illustrated. • We explore the role of water solvation on the CO 2 conversion path by assessing the H-shuttled (O-H bond formation) and water solvated (C-H bond formation). In this work, we systematically illustrate CO 2 reduction by H 2 on the Ru(0001) surface using periodic DFT calculations with micro-kinetic modeling to explore adsorbate-substrate, adsorbate-solvent, solvent-substrate interactions as well as reaction mechanisms. The effects of adsorbate-substrate interactions, water-mediated protonation kinetics, thermodynamics, and transient potential sweeps on reaction rate and selectivity are also studied. We propose three simple thermodynamic descriptors (CO + O, HCOO, and COOH) that represent the effectiveness of CO selectivity on Ru catalysts. More importantly, we explore the role of water solvation on the CO 2 conversion by assessing the H-shuttled (O-H bond formation) and water solvated (C-H bond formation) with various solvation models. To examine the solvation effect, a 6H 2 O/Ru(0001) water bilayer model is constructed by optimizing six H 2 O molecules close to the Ru surface, and multiple H-bonds are observed as local-minimum solvation structures among water molecules. Finally, the efficiency of the ruthenium catalyst is expressed by turnover frequencies (TOFs). We hope that these insights will deliver useful guidelines for designing more efficient, earth-abundant electrocatalysts in the future. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
01694332
Volume :
581
Database :
Academic Search Index
Journal :
Applied Surface Science
Publication Type :
Academic Journal
Accession number :
155285615
Full Text :
https://doi.org/10.1016/j.apsusc.2021.152354