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Atomically Precise, Thiolated Copper–Hydride Nanoclusters as Single-Site Hydrogenation Catalysts for Ketones in Mild Conditions

[Image: see text] Copper–hydrides are known catalysts for several technologically important reactions such as hydrogenation of CO, hydroamination of alkenes and alkynes, and chemoselective hydrogenation of unsaturated ketones to unsaturated alcohols. Stabilizing copper-based particles by ligand chem...

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Autores principales: Sun, Cunfa, Mammen, Nisha, Kaappa, Sami, Yuan, Peng, Deng, Guocheng, Zhao, Chaowei, Yan, Juanzhu, Malola, Sami, Honkala, Karoliina, Häkkinen, Hannu, Teo, Boon K., Zheng, Nanfeng
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2019
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6750866/
https://www.ncbi.nlm.nih.gov/pubmed/31067029
http://dx.doi.org/10.1021/acsnano.9b02052
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author Sun, Cunfa
Mammen, Nisha
Kaappa, Sami
Yuan, Peng
Deng, Guocheng
Zhao, Chaowei
Yan, Juanzhu
Malola, Sami
Honkala, Karoliina
Häkkinen, Hannu
Teo, Boon K.
Zheng, Nanfeng
author_facet Sun, Cunfa
Mammen, Nisha
Kaappa, Sami
Yuan, Peng
Deng, Guocheng
Zhao, Chaowei
Yan, Juanzhu
Malola, Sami
Honkala, Karoliina
Häkkinen, Hannu
Teo, Boon K.
Zheng, Nanfeng
author_sort Sun, Cunfa
collection PubMed
description [Image: see text] Copper–hydrides are known catalysts for several technologically important reactions such as hydrogenation of CO, hydroamination of alkenes and alkynes, and chemoselective hydrogenation of unsaturated ketones to unsaturated alcohols. Stabilizing copper-based particles by ligand chemistry to nanometer scale is an appealing route to make active catalysts with optimized material economy; however, it has been long believed that the ligand–metal interface, particularly if sulfur-containing thiols are used as stabilizing agent, may poison the catalyst. We report here a discovery of an ambient-stable thiolate-protected copper–hydride nanocluster [Cu(25)H(10)(SPhCl(2))(18)](3–) that readily catalyzes hydrogenation of ketones to alcohols in mild conditions. A full experimental and theoretical characterization of its atomic and electronic structure shows that the 10 hydrides are instrumental for the stability of the nanocluster and are in an active role being continuously consumed and replenished in the hydrogenation reaction. Density functional theory computations suggest, backed up by the experimental evidence, that the hydrogenation takes place only around a single site of the 10 hydride locations, rendering the [Cu(25)H(10)(SPhCl(2))(18)](3–) one of the first nanocatalysts whose structure and catalytic functions are characterized fully to atomic precision. Understanding of a working catalyst at the atomistic level helps to optimize its properties and provides fundamental insights into the controversial issue of how a stable, ligand-passivated, metal-containing nanocluster can be at the same time an active catalyst.
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spelling pubmed-67508662019-09-19 Atomically Precise, Thiolated Copper–Hydride Nanoclusters as Single-Site Hydrogenation Catalysts for Ketones in Mild Conditions Sun, Cunfa Mammen, Nisha Kaappa, Sami Yuan, Peng Deng, Guocheng Zhao, Chaowei Yan, Juanzhu Malola, Sami Honkala, Karoliina Häkkinen, Hannu Teo, Boon K. Zheng, Nanfeng ACS Nano [Image: see text] Copper–hydrides are known catalysts for several technologically important reactions such as hydrogenation of CO, hydroamination of alkenes and alkynes, and chemoselective hydrogenation of unsaturated ketones to unsaturated alcohols. Stabilizing copper-based particles by ligand chemistry to nanometer scale is an appealing route to make active catalysts with optimized material economy; however, it has been long believed that the ligand–metal interface, particularly if sulfur-containing thiols are used as stabilizing agent, may poison the catalyst. We report here a discovery of an ambient-stable thiolate-protected copper–hydride nanocluster [Cu(25)H(10)(SPhCl(2))(18)](3–) that readily catalyzes hydrogenation of ketones to alcohols in mild conditions. A full experimental and theoretical characterization of its atomic and electronic structure shows that the 10 hydrides are instrumental for the stability of the nanocluster and are in an active role being continuously consumed and replenished in the hydrogenation reaction. Density functional theory computations suggest, backed up by the experimental evidence, that the hydrogenation takes place only around a single site of the 10 hydride locations, rendering the [Cu(25)H(10)(SPhCl(2))(18)](3–) one of the first nanocatalysts whose structure and catalytic functions are characterized fully to atomic precision. Understanding of a working catalyst at the atomistic level helps to optimize its properties and provides fundamental insights into the controversial issue of how a stable, ligand-passivated, metal-containing nanocluster can be at the same time an active catalyst. American Chemical Society 2019-05-08 2019-05-28 /pmc/articles/PMC6750866/ /pubmed/31067029 http://dx.doi.org/10.1021/acsnano.9b02052 Text en Copyright © 2019 American Chemical Society This is an open access article published under a Creative Commons Attribution (CC-BY) License (http://pubs.acs.org/page/policy/authorchoice_ccby_termsofuse.html) , which permits unrestricted use, distribution and reproduction in any medium, provided the author and source are cited.
spellingShingle Sun, Cunfa
Mammen, Nisha
Kaappa, Sami
Yuan, Peng
Deng, Guocheng
Zhao, Chaowei
Yan, Juanzhu
Malola, Sami
Honkala, Karoliina
Häkkinen, Hannu
Teo, Boon K.
Zheng, Nanfeng
Atomically Precise, Thiolated Copper–Hydride Nanoclusters as Single-Site Hydrogenation Catalysts for Ketones in Mild Conditions
title Atomically Precise, Thiolated Copper–Hydride Nanoclusters as Single-Site Hydrogenation Catalysts for Ketones in Mild Conditions
title_full Atomically Precise, Thiolated Copper–Hydride Nanoclusters as Single-Site Hydrogenation Catalysts for Ketones in Mild Conditions
title_fullStr Atomically Precise, Thiolated Copper–Hydride Nanoclusters as Single-Site Hydrogenation Catalysts for Ketones in Mild Conditions
title_full_unstemmed Atomically Precise, Thiolated Copper–Hydride Nanoclusters as Single-Site Hydrogenation Catalysts for Ketones in Mild Conditions
title_short Atomically Precise, Thiolated Copper–Hydride Nanoclusters as Single-Site Hydrogenation Catalysts for Ketones in Mild Conditions
title_sort atomically precise, thiolated copper–hydride nanoclusters as single-site hydrogenation catalysts for ketones in mild conditions
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6750866/
https://www.ncbi.nlm.nih.gov/pubmed/31067029
http://dx.doi.org/10.1021/acsnano.9b02052
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