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Cited 3 time in webofscience Cited 4 time in scopus
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Origin of hydrogen adsorption free energy variation in electrochemical hydrogen evolution in transition-metal dichalcogenides

Authors
Lee, S.Lee, S.Kim, C.Han, Y.-K.
Issue Date
Jul-2024
Publisher
Elsevier
Keywords
Catalysts; Electrochemistry; First-principles calculation; Hydrogen evolution reaction; Water-splitting
Citation
Materials Today Energy, v.43, pp 1 - 10
Pages
10
Indexed
SCIE
SCOPUS
Journal Title
Materials Today Energy
Volume
43
Start Page
1
End Page
10
URI
https://scholarworks.dongguk.edu/handle/sw.dongguk/22079
DOI
10.1016/j.mtener.2024.101581
ISSN
2468-6069
2468-6069
Abstract
Two-dimensional transition-metal (TM)-doped transition metal dichalcogenides (TMDs) are among the most promising materials for water-splitting catalysts. Among various methods applied to promote the hydrogen evolution reaction (HER) in TMDs, doping with TM heteroatoms has attracted attention because this strategy allows optimization of hydrogen adsorption and H2 generation reactions. Herein, we conduct in-depth, systematic analyses of the trends in the change in the hydrogen adsorption free energy (ΔGH∗)—the most well-known descriptor for evaluating HER performance—for doped TMDs. The total of 150 different doped TMDs are used to conduct an atomic-level analysis of the origin of ΔGH∗ changes upon TM heteroatom doping. Moreover, we suggest two key factors that govern hydrogen adsorption over doped TMDs: 1) changes in the charge of chalcogen atoms, where hydrogen atoms are adsorbed onto early-TM-doped structures and 2) structural deformation energies accompanying the introduced dopants of the late-TM-doped structures. Furthermore, we propose a new perspective on how vacancies in TM-doped TMDs can result in the enhanced ΔGH∗ for the HER. We suggest that introducing electrostatic and structural controls in early- and late-TM-doped systems, respectively, are effective strategies for achieving thermoneutral ΔGH∗ in TMDs and promote the design of new TMD catalysts with superior water-splitting capabilities. © 2024 Elsevier Ltd
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