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Mechanism of the cooperative Si–H bond activation at Ru–S bonds

The nature of the hydrosilane activation mediated by ruthenium(ii) thiolate complexes of type [(R(3)P)Ru(SDmp)](+)[BAr(F)(4)](–) is elucidated by an in-depth experimental and theoretical study. The combination of various ruthenium(ii) thiolate complexes and tertiary hydrosilanes under variation of t...

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Autores principales: Stahl, Timo, Hrobárik, Peter, Königs, C. David F., Ohki, Yasuhiro, Tatsumi, Kazuyuki, Kemper, Sebastian, Kaupp, Martin, Klare, Hendrik F. T., Oestreich, Martin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Royal Society of Chemistry 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5707498/
https://www.ncbi.nlm.nih.gov/pubmed/29218203
http://dx.doi.org/10.1039/c5sc01035g
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author Stahl, Timo
Hrobárik, Peter
Königs, C. David F.
Ohki, Yasuhiro
Tatsumi, Kazuyuki
Kemper, Sebastian
Kaupp, Martin
Klare, Hendrik F. T.
Oestreich, Martin
author_facet Stahl, Timo
Hrobárik, Peter
Königs, C. David F.
Ohki, Yasuhiro
Tatsumi, Kazuyuki
Kemper, Sebastian
Kaupp, Martin
Klare, Hendrik F. T.
Oestreich, Martin
author_sort Stahl, Timo
collection PubMed
description The nature of the hydrosilane activation mediated by ruthenium(ii) thiolate complexes of type [(R(3)P)Ru(SDmp)](+)[BAr(F)(4)](–) is elucidated by an in-depth experimental and theoretical study. The combination of various ruthenium(ii) thiolate complexes and tertiary hydrosilanes under variation of the phosphine ligand and the substitution pattern at the silicon atom is investigated, providing detailed insight into the activation mode. The mechanism of action involves reversible heterolytic splitting of the Si–H bond across the polar Ru–S bond without changing the oxidation state of the metal, generating a ruthenium(ii) hydride and sulfur-stabilized silicon cations, i.e. metallasilylsulfonium ions. These stable yet highly reactive adducts, which serve as potent silicon electrophiles in various catalytic transformations, are fully characterized by systematic multinuclear NMR spectroscopy. The structural assignment is further verified by successful isolation and crystallographic characterization of these key intermediates. Quantum-chemical analyses of diverse bonding scenarios are in excellent agreement with the experimental findings. Moreover, the calculations reveal that formation of the hydrosilane adducts proceeds via barrierless electrophilic activation of the hydrosilane by sterically controlled η(1) (end-on) or η(2) (side-on) coordination of the Si–H bond to the Lewis acidic metal center, followed by heterolytic cleavage of the Si–H bond through a concerted four-membered transition state. The Ru–S bond remains virtually intact during the Si–H bond activation event and also preserves appreciable bonding character in the hydrosilane adducts. The overall Si–H bond activation process is exergonic with ΔG0r ranging from –20 to –40 kJ mol(–1), proceeding instantly already at low temperatures.
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spelling pubmed-57074982017-12-07 Mechanism of the cooperative Si–H bond activation at Ru–S bonds Stahl, Timo Hrobárik, Peter Königs, C. David F. Ohki, Yasuhiro Tatsumi, Kazuyuki Kemper, Sebastian Kaupp, Martin Klare, Hendrik F. T. Oestreich, Martin Chem Sci Chemistry The nature of the hydrosilane activation mediated by ruthenium(ii) thiolate complexes of type [(R(3)P)Ru(SDmp)](+)[BAr(F)(4)](–) is elucidated by an in-depth experimental and theoretical study. The combination of various ruthenium(ii) thiolate complexes and tertiary hydrosilanes under variation of the phosphine ligand and the substitution pattern at the silicon atom is investigated, providing detailed insight into the activation mode. The mechanism of action involves reversible heterolytic splitting of the Si–H bond across the polar Ru–S bond without changing the oxidation state of the metal, generating a ruthenium(ii) hydride and sulfur-stabilized silicon cations, i.e. metallasilylsulfonium ions. These stable yet highly reactive adducts, which serve as potent silicon electrophiles in various catalytic transformations, are fully characterized by systematic multinuclear NMR spectroscopy. The structural assignment is further verified by successful isolation and crystallographic characterization of these key intermediates. Quantum-chemical analyses of diverse bonding scenarios are in excellent agreement with the experimental findings. Moreover, the calculations reveal that formation of the hydrosilane adducts proceeds via barrierless electrophilic activation of the hydrosilane by sterically controlled η(1) (end-on) or η(2) (side-on) coordination of the Si–H bond to the Lewis acidic metal center, followed by heterolytic cleavage of the Si–H bond through a concerted four-membered transition state. The Ru–S bond remains virtually intact during the Si–H bond activation event and also preserves appreciable bonding character in the hydrosilane adducts. The overall Si–H bond activation process is exergonic with ΔG0r ranging from –20 to –40 kJ mol(–1), proceeding instantly already at low temperatures. Royal Society of Chemistry 2015-07-01 2015-05-18 /pmc/articles/PMC5707498/ /pubmed/29218203 http://dx.doi.org/10.1039/c5sc01035g Text en This journal is © The Royal Society of Chemistry 2015 https://creativecommons.org/licenses/by/3.0/This article is freely available. This article is licensed under a Creative Commons Attribution 3.0 Unported Licence (CC BY 3.0)
spellingShingle Chemistry
Stahl, Timo
Hrobárik, Peter
Königs, C. David F.
Ohki, Yasuhiro
Tatsumi, Kazuyuki
Kemper, Sebastian
Kaupp, Martin
Klare, Hendrik F. T.
Oestreich, Martin
Mechanism of the cooperative Si–H bond activation at Ru–S bonds
title Mechanism of the cooperative Si–H bond activation at Ru–S bonds
title_full Mechanism of the cooperative Si–H bond activation at Ru–S bonds
title_fullStr Mechanism of the cooperative Si–H bond activation at Ru–S bonds
title_full_unstemmed Mechanism of the cooperative Si–H bond activation at Ru–S bonds
title_short Mechanism of the cooperative Si–H bond activation at Ru–S bonds
title_sort mechanism of the cooperative si–h bond activation at ru–s bonds
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5707498/
https://www.ncbi.nlm.nih.gov/pubmed/29218203
http://dx.doi.org/10.1039/c5sc01035g
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