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Defect and strain engineered MoS(2)/graphene catalyst for an enhanced hydrogen evolution reaction

Molybdenum disulfide (MoS(2)) has been demonstrated as a promising non-precious metal electrocatalyst for the hydrogen evolution reaction (HER). However the efficiency of the HER falls short of expectations due to the large inert basal plane and poor electrical conductivity. In order to activate the...

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Autores principales: Yang, Zhaoyuan, Zhu, Jia, Xu, Xianglan, Wang, Lei, Zhou, Guobing, Yang, Zhen, Zhang, Yongfan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9890562/
https://www.ncbi.nlm.nih.gov/pubmed/36756561
http://dx.doi.org/10.1039/d2ra07363c
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author Yang, Zhaoyuan
Zhu, Jia
Xu, Xianglan
Wang, Lei
Zhou, Guobing
Yang, Zhen
Zhang, Yongfan
author_facet Yang, Zhaoyuan
Zhu, Jia
Xu, Xianglan
Wang, Lei
Zhou, Guobing
Yang, Zhen
Zhang, Yongfan
author_sort Yang, Zhaoyuan
collection PubMed
description Molybdenum disulfide (MoS(2)) has been demonstrated as a promising non-precious metal electrocatalyst for the hydrogen evolution reaction (HER). However the efficiency of the HER falls short of expectations due to the large inert basal plane and poor electrical conductivity. In order to activate the MoS(2) basal plane and enhance the hydrogen evolution reaction (HER) activity, two strategies on the hybrid MoS(2)/graphene, including intrinsic defects and simultaneous strain engineering, have been systematically investigated based on density functional theory calculations. We firstly investigated the HER activity of a MoS(2)/graphene hybrid material with seven types of point defect sites, V(S), V(S2), V(Mo), V(MoS3), V(MoS6), Mo(S2) and S2(Mo). Using the hydrogen adsorption free energy (ΔG(H)) as the descriptor, results demonstrate that four of these seven defects (V(S), V(S2), Mo(S2), V(MoS3)) act as a catalytic active site for the HER and exhibited superior electrocatalytic activity. More importantly, we found that ΔG(H) can be further tuned to an ideal value (0 eV) with proper tensile strain, which effectively optimizes and boosts the HER activity, especially for the V(S), V(S2), V(MoS3) defects and Mo(S2) antisite defects. Our results demonstrated that a proper combination of tensile strain and defect structure is an effective approach to achieve more catalytic active sites and further tune and boost the intrinsic activity of the active sites for HER performance. Furthermore, the emendatory d-band center of metal proves to be an excellent descriptor for determining H adsorption strength on defective MoS(2)/graphene hybrid material under different strain conditions. In addition, the low kinetic barrier of H(2) evolution indicated that the defective MoS(2)/graphene system exhibited favorable kinetic activity in both the Volmer–Heyrovsky and the Volmer–Tafel mechanism. These results may pave a new way to design novel ultrahigh-performance MoS(2)-based HER catalysts.
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spelling pubmed-98905622023-02-07 Defect and strain engineered MoS(2)/graphene catalyst for an enhanced hydrogen evolution reaction Yang, Zhaoyuan Zhu, Jia Xu, Xianglan Wang, Lei Zhou, Guobing Yang, Zhen Zhang, Yongfan RSC Adv Chemistry Molybdenum disulfide (MoS(2)) has been demonstrated as a promising non-precious metal electrocatalyst for the hydrogen evolution reaction (HER). However the efficiency of the HER falls short of expectations due to the large inert basal plane and poor electrical conductivity. In order to activate the MoS(2) basal plane and enhance the hydrogen evolution reaction (HER) activity, two strategies on the hybrid MoS(2)/graphene, including intrinsic defects and simultaneous strain engineering, have been systematically investigated based on density functional theory calculations. We firstly investigated the HER activity of a MoS(2)/graphene hybrid material with seven types of point defect sites, V(S), V(S2), V(Mo), V(MoS3), V(MoS6), Mo(S2) and S2(Mo). Using the hydrogen adsorption free energy (ΔG(H)) as the descriptor, results demonstrate that four of these seven defects (V(S), V(S2), Mo(S2), V(MoS3)) act as a catalytic active site for the HER and exhibited superior electrocatalytic activity. More importantly, we found that ΔG(H) can be further tuned to an ideal value (0 eV) with proper tensile strain, which effectively optimizes and boosts the HER activity, especially for the V(S), V(S2), V(MoS3) defects and Mo(S2) antisite defects. Our results demonstrated that a proper combination of tensile strain and defect structure is an effective approach to achieve more catalytic active sites and further tune and boost the intrinsic activity of the active sites for HER performance. Furthermore, the emendatory d-band center of metal proves to be an excellent descriptor for determining H adsorption strength on defective MoS(2)/graphene hybrid material under different strain conditions. In addition, the low kinetic barrier of H(2) evolution indicated that the defective MoS(2)/graphene system exhibited favorable kinetic activity in both the Volmer–Heyrovsky and the Volmer–Tafel mechanism. These results may pave a new way to design novel ultrahigh-performance MoS(2)-based HER catalysts. The Royal Society of Chemistry 2023-01-27 /pmc/articles/PMC9890562/ /pubmed/36756561 http://dx.doi.org/10.1039/d2ra07363c Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Yang, Zhaoyuan
Zhu, Jia
Xu, Xianglan
Wang, Lei
Zhou, Guobing
Yang, Zhen
Zhang, Yongfan
Defect and strain engineered MoS(2)/graphene catalyst for an enhanced hydrogen evolution reaction
title Defect and strain engineered MoS(2)/graphene catalyst for an enhanced hydrogen evolution reaction
title_full Defect and strain engineered MoS(2)/graphene catalyst for an enhanced hydrogen evolution reaction
title_fullStr Defect and strain engineered MoS(2)/graphene catalyst for an enhanced hydrogen evolution reaction
title_full_unstemmed Defect and strain engineered MoS(2)/graphene catalyst for an enhanced hydrogen evolution reaction
title_short Defect and strain engineered MoS(2)/graphene catalyst for an enhanced hydrogen evolution reaction
title_sort defect and strain engineered mos(2)/graphene catalyst for an enhanced hydrogen evolution reaction
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9890562/
https://www.ncbi.nlm.nih.gov/pubmed/36756561
http://dx.doi.org/10.1039/d2ra07363c
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