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Hydrogenation of carbon dioxide to methanol using a homogeneous ruthenium–Triphos catalyst: from mechanistic investigations to multiphase catalysis

The hydrogenation of CO(2) to methanol can be achieved using a single molecular organometallic catalyst. Whereas homogeneous catalysts were previously believed to allow the hydrogenation only via formate esters as stable intermediates, the present mechanistic study demonstrates that the multistep tr...

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Autores principales: Wesselbaum, Sebastian, Moha, Verena, Meuresch, Markus, Brosinski, Sandra, Thenert, Katharina M., Kothe, Jens, Stein, Thorsten vom, Englert, Ulli, Hölscher, Markus, Klankermayer, Jürgen, Leitner, Walter
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Royal Society of Chemistry 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6085670/
https://www.ncbi.nlm.nih.gov/pubmed/30154993
http://dx.doi.org/10.1039/c4sc02087a
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author Wesselbaum, Sebastian
Moha, Verena
Meuresch, Markus
Brosinski, Sandra
Thenert, Katharina M.
Kothe, Jens
Stein, Thorsten vom
Englert, Ulli
Hölscher, Markus
Klankermayer, Jürgen
Leitner, Walter
author_facet Wesselbaum, Sebastian
Moha, Verena
Meuresch, Markus
Brosinski, Sandra
Thenert, Katharina M.
Kothe, Jens
Stein, Thorsten vom
Englert, Ulli
Hölscher, Markus
Klankermayer, Jürgen
Leitner, Walter
author_sort Wesselbaum, Sebastian
collection PubMed
description The hydrogenation of CO(2) to methanol can be achieved using a single molecular organometallic catalyst. Whereas homogeneous catalysts were previously believed to allow the hydrogenation only via formate esters as stable intermediates, the present mechanistic study demonstrates that the multistep transformation can occur directly on the Ru–Triphos (Triphos = 1,1,1-tris(diphenylphosphinomethyl)ethane) centre. The cationic formate complex [(Triphos)Ru(η(2)-O(2)CH)(S)](+) (S = solvent) was identified as the key intermediate, leading to the synthesis of the analogous acetate complex as a robust and stable precursor for the catalytic transformation. A detailed mechanistic study using DFT calculations shows that a sequential series of hydride transfer and protonolysis steps can account for the transformation of CO(2)via formate/formic acid to hydroxymethanolate/formaldehyde and finally methanolate/methanol within the coordination sphere of a single Ru–Triphos-fragment. All experimental results of the systematic parameter optimisation are fully consistent with this mechanistic picture. Based on these findings, a biphasic system consisting of H(2)O and 2-MTHF was developed, in which the active cationic Ru-complex resides in the organic phase for recycling and methanol is extracted with the aqueous phase.
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spelling pubmed-60856702018-08-28 Hydrogenation of carbon dioxide to methanol using a homogeneous ruthenium–Triphos catalyst: from mechanistic investigations to multiphase catalysis Wesselbaum, Sebastian Moha, Verena Meuresch, Markus Brosinski, Sandra Thenert, Katharina M. Kothe, Jens Stein, Thorsten vom Englert, Ulli Hölscher, Markus Klankermayer, Jürgen Leitner, Walter Chem Sci Chemistry The hydrogenation of CO(2) to methanol can be achieved using a single molecular organometallic catalyst. Whereas homogeneous catalysts were previously believed to allow the hydrogenation only via formate esters as stable intermediates, the present mechanistic study demonstrates that the multistep transformation can occur directly on the Ru–Triphos (Triphos = 1,1,1-tris(diphenylphosphinomethyl)ethane) centre. The cationic formate complex [(Triphos)Ru(η(2)-O(2)CH)(S)](+) (S = solvent) was identified as the key intermediate, leading to the synthesis of the analogous acetate complex as a robust and stable precursor for the catalytic transformation. A detailed mechanistic study using DFT calculations shows that a sequential series of hydride transfer and protonolysis steps can account for the transformation of CO(2)via formate/formic acid to hydroxymethanolate/formaldehyde and finally methanolate/methanol within the coordination sphere of a single Ru–Triphos-fragment. All experimental results of the systematic parameter optimisation are fully consistent with this mechanistic picture. Based on these findings, a biphasic system consisting of H(2)O and 2-MTHF was developed, in which the active cationic Ru-complex resides in the organic phase for recycling and methanol is extracted with the aqueous phase. Royal Society of Chemistry 2015-01-01 2014-08-27 /pmc/articles/PMC6085670/ /pubmed/30154993 http://dx.doi.org/10.1039/c4sc02087a 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
Wesselbaum, Sebastian
Moha, Verena
Meuresch, Markus
Brosinski, Sandra
Thenert, Katharina M.
Kothe, Jens
Stein, Thorsten vom
Englert, Ulli
Hölscher, Markus
Klankermayer, Jürgen
Leitner, Walter
Hydrogenation of carbon dioxide to methanol using a homogeneous ruthenium–Triphos catalyst: from mechanistic investigations to multiphase catalysis
title Hydrogenation of carbon dioxide to methanol using a homogeneous ruthenium–Triphos catalyst: from mechanistic investigations to multiphase catalysis
title_full Hydrogenation of carbon dioxide to methanol using a homogeneous ruthenium–Triphos catalyst: from mechanistic investigations to multiphase catalysis
title_fullStr Hydrogenation of carbon dioxide to methanol using a homogeneous ruthenium–Triphos catalyst: from mechanistic investigations to multiphase catalysis
title_full_unstemmed Hydrogenation of carbon dioxide to methanol using a homogeneous ruthenium–Triphos catalyst: from mechanistic investigations to multiphase catalysis
title_short Hydrogenation of carbon dioxide to methanol using a homogeneous ruthenium–Triphos catalyst: from mechanistic investigations to multiphase catalysis
title_sort hydrogenation of carbon dioxide to methanol using a homogeneous ruthenium–triphos catalyst: from mechanistic investigations to multiphase catalysis
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6085670/
https://www.ncbi.nlm.nih.gov/pubmed/30154993
http://dx.doi.org/10.1039/c4sc02087a
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