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Continuous Production of Biorenewable, Polymer‐Grade Lactone Monomers through Sn‐β‐Catalyzed Baeyer–Villiger Oxidation with H(2)O(2)

The Baeyer–Villiger oxidation is a key transformation for sustainable chemical synthesis, especially when H(2)O(2) and solid materials are employed as oxidant and catalyst, respectively. 4‐substituted cycloketones, which are readily available from renewables, present excellent platforms for Baeyer–V...

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Autores principales: Yakabi, Keiko, Mathieux, Thibault, Milne, Kirstie, López‐Vidal, Eva M., Buchard, Antoine, Hammond, Ceri
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5708276/
https://www.ncbi.nlm.nih.gov/pubmed/28804968
http://dx.doi.org/10.1002/cssc.201701298
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author Yakabi, Keiko
Mathieux, Thibault
Milne, Kirstie
López‐Vidal, Eva M.
Buchard, Antoine
Hammond, Ceri
author_facet Yakabi, Keiko
Mathieux, Thibault
Milne, Kirstie
López‐Vidal, Eva M.
Buchard, Antoine
Hammond, Ceri
author_sort Yakabi, Keiko
collection PubMed
description The Baeyer–Villiger oxidation is a key transformation for sustainable chemical synthesis, especially when H(2)O(2) and solid materials are employed as oxidant and catalyst, respectively. 4‐substituted cycloketones, which are readily available from renewables, present excellent platforms for Baeyer–Villiger upgrading. Such substrates exhibit substantially higher levels of activity and produce lactones at higher levels of lactone selectivity at all values of substrate conversion, relative to non‐substituted cyclohexanone. For 4‐isopropyl cyclohexanone, which is readily available from β‐pinene, continuous upgrading was evaluated in a plug‐flow reactor. Excellent selectivity (85 % at 65 % conversion), stability, and productivity were observed over 56 h, with over 1000 turnovers (mol product per mol Sn) being achieved with no loss of activity. A maximum space–time yield that was almost twice that for non‐substituted cyclohexanone was also obtained for this substrate [1173 vs. 607 g(product) kg(catalyst)(−1) cm(−3) h(−1)]. The lactone produced is also shown to be of suitable quality for ring opening polymerization. In addition to demonstrating the viability of the Sn‐β/H(2)O(2) system to produce renewable lactone monomers suitable for polymer applications, the substituted alkyl cyclohexanones studied also help to elucidate steric, electronic, and thermodynamic elements of this transformation in greater detail than previously achieved.
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spelling pubmed-57082762017-12-04 Continuous Production of Biorenewable, Polymer‐Grade Lactone Monomers through Sn‐β‐Catalyzed Baeyer–Villiger Oxidation with H(2)O(2) Yakabi, Keiko Mathieux, Thibault Milne, Kirstie López‐Vidal, Eva M. Buchard, Antoine Hammond, Ceri ChemSusChem Full Papers The Baeyer–Villiger oxidation is a key transformation for sustainable chemical synthesis, especially when H(2)O(2) and solid materials are employed as oxidant and catalyst, respectively. 4‐substituted cycloketones, which are readily available from renewables, present excellent platforms for Baeyer–Villiger upgrading. Such substrates exhibit substantially higher levels of activity and produce lactones at higher levels of lactone selectivity at all values of substrate conversion, relative to non‐substituted cyclohexanone. For 4‐isopropyl cyclohexanone, which is readily available from β‐pinene, continuous upgrading was evaluated in a plug‐flow reactor. Excellent selectivity (85 % at 65 % conversion), stability, and productivity were observed over 56 h, with over 1000 turnovers (mol product per mol Sn) being achieved with no loss of activity. A maximum space–time yield that was almost twice that for non‐substituted cyclohexanone was also obtained for this substrate [1173 vs. 607 g(product) kg(catalyst)(−1) cm(−3) h(−1)]. The lactone produced is also shown to be of suitable quality for ring opening polymerization. In addition to demonstrating the viability of the Sn‐β/H(2)O(2) system to produce renewable lactone monomers suitable for polymer applications, the substituted alkyl cyclohexanones studied also help to elucidate steric, electronic, and thermodynamic elements of this transformation in greater detail than previously achieved. John Wiley and Sons Inc. 2017-09-07 2017-09-22 /pmc/articles/PMC5708276/ /pubmed/28804968 http://dx.doi.org/10.1002/cssc.201701298 Text en © 2017 The Authors. Published by Wiley-VCH Verlag GmbH & Co. KGaA. This is an open access article under the terms of the Creative Commons Attribution (http://creativecommons.org/licenses/by/4.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Full Papers
Yakabi, Keiko
Mathieux, Thibault
Milne, Kirstie
López‐Vidal, Eva M.
Buchard, Antoine
Hammond, Ceri
Continuous Production of Biorenewable, Polymer‐Grade Lactone Monomers through Sn‐β‐Catalyzed Baeyer–Villiger Oxidation with H(2)O(2)
title Continuous Production of Biorenewable, Polymer‐Grade Lactone Monomers through Sn‐β‐Catalyzed Baeyer–Villiger Oxidation with H(2)O(2)
title_full Continuous Production of Biorenewable, Polymer‐Grade Lactone Monomers through Sn‐β‐Catalyzed Baeyer–Villiger Oxidation with H(2)O(2)
title_fullStr Continuous Production of Biorenewable, Polymer‐Grade Lactone Monomers through Sn‐β‐Catalyzed Baeyer–Villiger Oxidation with H(2)O(2)
title_full_unstemmed Continuous Production of Biorenewable, Polymer‐Grade Lactone Monomers through Sn‐β‐Catalyzed Baeyer–Villiger Oxidation with H(2)O(2)
title_short Continuous Production of Biorenewable, Polymer‐Grade Lactone Monomers through Sn‐β‐Catalyzed Baeyer–Villiger Oxidation with H(2)O(2)
title_sort continuous production of biorenewable, polymer‐grade lactone monomers through sn‐β‐catalyzed baeyer–villiger oxidation with h(2)o(2)
topic Full Papers
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5708276/
https://www.ncbi.nlm.nih.gov/pubmed/28804968
http://dx.doi.org/10.1002/cssc.201701298
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