Doping-Induced Enhancement of Hydrogen Evolution at MoS2 Electrodes

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Hauptverfasser: Hanslin, Sander Ø., Jónsson, Hannes, Akola, Jaakko
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Veröffentlicht: 2024
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author Hanslin, Sander Ø.
Jónsson, Hannes
Akola, Jaakko
author_facet Hanslin, Sander Ø.
Jónsson, Hannes
Akola, Jaakko
contents Rate theory and DFT calculations of hydrogen evolution reaction (HER) on MoS2 with Co, Ni and Pt impurities show the significance of dihydrogen (H2*) complex where both hydrogen atoms are interacting with the surface. Stabilization of such a complex affects the competing Volmer-Heyrovsky (direct H2 release) and Volmer-Tafel (H2* intermediate) pathways. The resulting evolution proceeds with a very small overpotential for all dopants ($η$ = 0.1 to 0.2 V) at 25% edge substitution, significantly reduced from the already low $η$ = 0.27 V for the undoped edge. At full edge substitution, Co-MoS2 remains highly active ($η$ = 0.18 V) while Ni- and Pt-MoS2 are deactivated ($η$ = 0.4 to 0.5 V) due to unfavorable interaction with H2*. Instead of the single S-vacancy, the site of intrinsic activity in the basal plane was found to be the undercoordinated central Mo-atom in threefold S-vacancy configurations, enabling hydrogen evolution with $η$ = 0.52 V via a H2* intermediate. The impurity atoms interact favorably with the intrinsic sulfur vacancies on the basal plane, stabilizing but simultaneously deactivating the triple vacancy configuration. The calculated shifts in overpotential are consistent with reported measurements, and the dependence on doping level may explain variations in experimental observations.
format Preprint
id arxiv_https___arxiv_org_abs_2409_02749
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Doping-Induced Enhancement of Hydrogen Evolution at MoS2 Electrodes
Hanslin, Sander Ø.
Jónsson, Hannes
Akola, Jaakko
Materials Science
Mesoscale and Nanoscale Physics
Chemical Physics
Computational Physics
Rate theory and DFT calculations of hydrogen evolution reaction (HER) on MoS2 with Co, Ni and Pt impurities show the significance of dihydrogen (H2*) complex where both hydrogen atoms are interacting with the surface. Stabilization of such a complex affects the competing Volmer-Heyrovsky (direct H2 release) and Volmer-Tafel (H2* intermediate) pathways. The resulting evolution proceeds with a very small overpotential for all dopants ($η$ = 0.1 to 0.2 V) at 25% edge substitution, significantly reduced from the already low $η$ = 0.27 V for the undoped edge. At full edge substitution, Co-MoS2 remains highly active ($η$ = 0.18 V) while Ni- and Pt-MoS2 are deactivated ($η$ = 0.4 to 0.5 V) due to unfavorable interaction with H2*. Instead of the single S-vacancy, the site of intrinsic activity in the basal plane was found to be the undercoordinated central Mo-atom in threefold S-vacancy configurations, enabling hydrogen evolution with $η$ = 0.52 V via a H2* intermediate. The impurity atoms interact favorably with the intrinsic sulfur vacancies on the basal plane, stabilizing but simultaneously deactivating the triple vacancy configuration. The calculated shifts in overpotential are consistent with reported measurements, and the dependence on doping level may explain variations in experimental observations.
title Doping-Induced Enhancement of Hydrogen Evolution at MoS2 Electrodes
topic Materials Science
Mesoscale and Nanoscale Physics
Chemical Physics
Computational Physics
url https://arxiv.org/abs/2409.02749