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Dual cobalt–copper light-driven catalytic reduction of aldehydes and aromatic ketones in aqueous media

We present an efficient, general, fast, and robust light-driven methodology based on earth-abundant elements to reduce aryl ketones, and both aryl and aliphatic aldehydes (up to 1400 TON). The catalytic system consists of a robust and well-defined aminopyridyl cobalt complex active for photocatalyti...

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Autores principales: Call, Arnau, Casadevall, Carla, Acuña-Parés, Ferran, Casitas, Alicia, Lloret-Fillol, Julio
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Royal Society of Chemistry 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6100254/
https://www.ncbi.nlm.nih.gov/pubmed/30155221
http://dx.doi.org/10.1039/c7sc01276d
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author Call, Arnau
Casadevall, Carla
Acuña-Parés, Ferran
Casitas, Alicia
Lloret-Fillol, Julio
author_facet Call, Arnau
Casadevall, Carla
Acuña-Parés, Ferran
Casitas, Alicia
Lloret-Fillol, Julio
author_sort Call, Arnau
collection PubMed
description We present an efficient, general, fast, and robust light-driven methodology based on earth-abundant elements to reduce aryl ketones, and both aryl and aliphatic aldehydes (up to 1400 TON). The catalytic system consists of a robust and well-defined aminopyridyl cobalt complex active for photocatalytic water reduction and the [Cu(bathocuproine)(Xantphos)](PF(6)) photoredox catalyst. The dual cobalt–copper system uses visible light as the driving-force and H(2)O and an electron donor (Et(3)N or (i)Pr(2)EtN) as the hydride source. The catalytic system operates in aqueous mixtures (80–60% water) with high selectivity towards the reduction of organic substrates (>2000) vs. water reduction, and tolerates O(2). High selectivity towards the hydrogenation of aryl ketones is observed in the presence of terminal olefins, aliphatic ketones, and alkynes. Remarkably, the catalytic system also shows unique selectivity for the reduction of acetophenone in the presence of aliphatic aldehydes. The catalytic system provides a simple and convenient method to obtain α,β-deuterated alcohols. Both the observed reactivity and the DFT modelling support a common cobalt hydride intermediate. The DFT modelled energy profile for the [Co–H] nucleophilic attack to acetophenone and water rationalises the competence of [Co(II)–H] to reduce acetophenone in the presence of water. Mechanistic studies suggest alternative mechanisms depending on the redox potential of the substrate. These results show the potential of the water reduction catalyst [Co(OTf)(Py(2)(Ts)tacn)](OTf) (1), (Py(2)(Ts)tacn = 1,4-di(picolyl)-7-(p-toluenesulfonyl)-1,4,7-triazacyclononane, OTf = trifluoromethanesulfonate anion) to develop light-driven selective organic transformations and fine solar chemicals.
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spelling pubmed-61002542018-08-28 Dual cobalt–copper light-driven catalytic reduction of aldehydes and aromatic ketones in aqueous media Call, Arnau Casadevall, Carla Acuña-Parés, Ferran Casitas, Alicia Lloret-Fillol, Julio Chem Sci Chemistry We present an efficient, general, fast, and robust light-driven methodology based on earth-abundant elements to reduce aryl ketones, and both aryl and aliphatic aldehydes (up to 1400 TON). The catalytic system consists of a robust and well-defined aminopyridyl cobalt complex active for photocatalytic water reduction and the [Cu(bathocuproine)(Xantphos)](PF(6)) photoredox catalyst. The dual cobalt–copper system uses visible light as the driving-force and H(2)O and an electron donor (Et(3)N or (i)Pr(2)EtN) as the hydride source. The catalytic system operates in aqueous mixtures (80–60% water) with high selectivity towards the reduction of organic substrates (>2000) vs. water reduction, and tolerates O(2). High selectivity towards the hydrogenation of aryl ketones is observed in the presence of terminal olefins, aliphatic ketones, and alkynes. Remarkably, the catalytic system also shows unique selectivity for the reduction of acetophenone in the presence of aliphatic aldehydes. The catalytic system provides a simple and convenient method to obtain α,β-deuterated alcohols. Both the observed reactivity and the DFT modelling support a common cobalt hydride intermediate. The DFT modelled energy profile for the [Co–H] nucleophilic attack to acetophenone and water rationalises the competence of [Co(II)–H] to reduce acetophenone in the presence of water. Mechanistic studies suggest alternative mechanisms depending on the redox potential of the substrate. These results show the potential of the water reduction catalyst [Co(OTf)(Py(2)(Ts)tacn)](OTf) (1), (Py(2)(Ts)tacn = 1,4-di(picolyl)-7-(p-toluenesulfonyl)-1,4,7-triazacyclononane, OTf = trifluoromethanesulfonate anion) to develop light-driven selective organic transformations and fine solar chemicals. Royal Society of Chemistry 2017-07-01 2017-06-01 /pmc/articles/PMC6100254/ /pubmed/30155221 http://dx.doi.org/10.1039/c7sc01276d Text en This journal is © The Royal Society of Chemistry 2017 http://creativecommons.org/licenses/by-nc/3.0/ This article is freely available. This article is licensed under a Creative Commons Attribution Non Commercial 3.0 Unported Licence (CC BY-NC 3.0)
spellingShingle Chemistry
Call, Arnau
Casadevall, Carla
Acuña-Parés, Ferran
Casitas, Alicia
Lloret-Fillol, Julio
Dual cobalt–copper light-driven catalytic reduction of aldehydes and aromatic ketones in aqueous media
title Dual cobalt–copper light-driven catalytic reduction of aldehydes and aromatic ketones in aqueous media
title_full Dual cobalt–copper light-driven catalytic reduction of aldehydes and aromatic ketones in aqueous media
title_fullStr Dual cobalt–copper light-driven catalytic reduction of aldehydes and aromatic ketones in aqueous media
title_full_unstemmed Dual cobalt–copper light-driven catalytic reduction of aldehydes and aromatic ketones in aqueous media
title_short Dual cobalt–copper light-driven catalytic reduction of aldehydes and aromatic ketones in aqueous media
title_sort dual cobalt–copper light-driven catalytic reduction of aldehydes and aromatic ketones in aqueous media
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6100254/
https://www.ncbi.nlm.nih.gov/pubmed/30155221
http://dx.doi.org/10.1039/c7sc01276d
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