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Structural Properties of Gas Phase Molybdenum Sulfide Clusters [Mo(3)S(13)](2–), [HMo(3)S(13)](−), and [H(3)Mo(3)S(13)](+) as Model Systems of a Promising Hydrogen Evolution Catalyst

[Image: see text] Amorphous molybdenum sulfide (MoS(x)) is a potent catalyst for the hydrogen evolution reaction (HER). Since mechanistic investigations on amorphous solids are particularly difficult, we use a bottom-up approach and study the [Mo(3)S(13)](2–) nanocluster and its protonated forms. Th...

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Autores principales: Baloglou, Aristeidis, Ončák, Milan, Grutza, Marie-Luise, van der Linde, Christian, Kurz, Philipp, Beyer, Martin K.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2018
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6453024/
https://www.ncbi.nlm.nih.gov/pubmed/30984322
http://dx.doi.org/10.1021/acs.jpcc.8b08324
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author Baloglou, Aristeidis
Ončák, Milan
Grutza, Marie-Luise
van der Linde, Christian
Kurz, Philipp
Beyer, Martin K.
author_facet Baloglou, Aristeidis
Ončák, Milan
Grutza, Marie-Luise
van der Linde, Christian
Kurz, Philipp
Beyer, Martin K.
author_sort Baloglou, Aristeidis
collection PubMed
description [Image: see text] Amorphous molybdenum sulfide (MoS(x)) is a potent catalyst for the hydrogen evolution reaction (HER). Since mechanistic investigations on amorphous solids are particularly difficult, we use a bottom-up approach and study the [Mo(3)S(13)](2–) nanocluster and its protonated forms. The mass selected pure [Mo(3)S(13)](2–) as well as singly and triply protonated [HMo(3)S(13)](−) and [H(3)Mo(3)S(13)](+) ions, respectively, were investigated by a combination of collision induced dissociation (CID) experiments and quantum chemical calculations. A rich variety of H(x)S(y) elimination channels was observed, giving insight into the structural flexibility of the clusters. In particular, it was calculated that the observed clusters tend to keep the Mo(3) ring structure found in the bulk and that protons adsorb primarily on terminal disulfide units of the cluster. Mo–H bonds are formed only for quasi-linear species with Mo centers featuring empty coordination sites. Protonation leads to increased cluster stability against CID. The rich variety of CID dissociation products for the triply protonated [H(3)Mo(3)S(13)](+) ion, however, suggests that it has a large degree of structural flexibility, with roaming H/SH moieties, which could be a key feature of MoS(x) to facilitate HER catalysis via a Volmer−Heyrovsky mechanism.
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spelling pubmed-64530242019-10-16 Structural Properties of Gas Phase Molybdenum Sulfide Clusters [Mo(3)S(13)](2–), [HMo(3)S(13)](−), and [H(3)Mo(3)S(13)](+) as Model Systems of a Promising Hydrogen Evolution Catalyst Baloglou, Aristeidis Ončák, Milan Grutza, Marie-Luise van der Linde, Christian Kurz, Philipp Beyer, Martin K. J Phys Chem C Nanomater Interfaces [Image: see text] Amorphous molybdenum sulfide (MoS(x)) is a potent catalyst for the hydrogen evolution reaction (HER). Since mechanistic investigations on amorphous solids are particularly difficult, we use a bottom-up approach and study the [Mo(3)S(13)](2–) nanocluster and its protonated forms. The mass selected pure [Mo(3)S(13)](2–) as well as singly and triply protonated [HMo(3)S(13)](−) and [H(3)Mo(3)S(13)](+) ions, respectively, were investigated by a combination of collision induced dissociation (CID) experiments and quantum chemical calculations. A rich variety of H(x)S(y) elimination channels was observed, giving insight into the structural flexibility of the clusters. In particular, it was calculated that the observed clusters tend to keep the Mo(3) ring structure found in the bulk and that protons adsorb primarily on terminal disulfide units of the cluster. Mo–H bonds are formed only for quasi-linear species with Mo centers featuring empty coordination sites. Protonation leads to increased cluster stability against CID. The rich variety of CID dissociation products for the triply protonated [H(3)Mo(3)S(13)](+) ion, however, suggests that it has a large degree of structural flexibility, with roaming H/SH moieties, which could be a key feature of MoS(x) to facilitate HER catalysis via a Volmer−Heyrovsky mechanism. American Chemical Society 2018-10-16 2019-04-04 /pmc/articles/PMC6453024/ /pubmed/30984322 http://dx.doi.org/10.1021/acs.jpcc.8b08324 Text en Copyright © 2018 American Chemical Society This is an open access article published under an ACS AuthorChoice License (http://pubs.acs.org/page/policy/authorchoice_termsofuse.html) , which permits copying and redistribution of the article or any adaptations for non-commercial purposes.
spellingShingle Baloglou, Aristeidis
Ončák, Milan
Grutza, Marie-Luise
van der Linde, Christian
Kurz, Philipp
Beyer, Martin K.
Structural Properties of Gas Phase Molybdenum Sulfide Clusters [Mo(3)S(13)](2–), [HMo(3)S(13)](−), and [H(3)Mo(3)S(13)](+) as Model Systems of a Promising Hydrogen Evolution Catalyst
title Structural Properties of Gas Phase Molybdenum Sulfide Clusters [Mo(3)S(13)](2–), [HMo(3)S(13)](−), and [H(3)Mo(3)S(13)](+) as Model Systems of a Promising Hydrogen Evolution Catalyst
title_full Structural Properties of Gas Phase Molybdenum Sulfide Clusters [Mo(3)S(13)](2–), [HMo(3)S(13)](−), and [H(3)Mo(3)S(13)](+) as Model Systems of a Promising Hydrogen Evolution Catalyst
title_fullStr Structural Properties of Gas Phase Molybdenum Sulfide Clusters [Mo(3)S(13)](2–), [HMo(3)S(13)](−), and [H(3)Mo(3)S(13)](+) as Model Systems of a Promising Hydrogen Evolution Catalyst
title_full_unstemmed Structural Properties of Gas Phase Molybdenum Sulfide Clusters [Mo(3)S(13)](2–), [HMo(3)S(13)](−), and [H(3)Mo(3)S(13)](+) as Model Systems of a Promising Hydrogen Evolution Catalyst
title_short Structural Properties of Gas Phase Molybdenum Sulfide Clusters [Mo(3)S(13)](2–), [HMo(3)S(13)](−), and [H(3)Mo(3)S(13)](+) as Model Systems of a Promising Hydrogen Evolution Catalyst
title_sort structural properties of gas phase molybdenum sulfide clusters [mo(3)s(13)](2–), [hmo(3)s(13)](−), and [h(3)mo(3)s(13)](+) as model systems of a promising hydrogen evolution catalyst
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6453024/
https://www.ncbi.nlm.nih.gov/pubmed/30984322
http://dx.doi.org/10.1021/acs.jpcc.8b08324
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