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The Lewis Pair Polymerization of Lactones Using Metal Halides and N-Heterocyclic Olefins: Theoretical Insights

Lewis pair polymerization employing N-Heterocyclic olefins (NHOs) and simple metal halides as co-catalysts has emerged as a useful tool to polymerize diverse lactones. To elucidate some of the mechanistic aspects that remain unclear to date and to better understand the impact of the metal species, c...

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Autores principales: Meisner, Jan, Karwounopoulos, Johannes, Walther, Patrick, Kästner, Johannes, Naumann, Stefan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6017504/
https://www.ncbi.nlm.nih.gov/pubmed/29462873
http://dx.doi.org/10.3390/molecules23020432
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author Meisner, Jan
Karwounopoulos, Johannes
Walther, Patrick
Kästner, Johannes
Naumann, Stefan
author_facet Meisner, Jan
Karwounopoulos, Johannes
Walther, Patrick
Kästner, Johannes
Naumann, Stefan
author_sort Meisner, Jan
collection PubMed
description Lewis pair polymerization employing N-Heterocyclic olefins (NHOs) and simple metal halides as co-catalysts has emerged as a useful tool to polymerize diverse lactones. To elucidate some of the mechanistic aspects that remain unclear to date and to better understand the impact of the metal species, computational methods have been applied. Several key aspects have been considered: (1) the formation of NHO-metal halide adducts has been evaluated for eight different NHOs and three different Lewis acids, (2) the coordination of four lactones to MgCl(2) was studied and (3) the deprotonation of an initiator (butanol) was investigated in the presence and absence of metal halide for one specific Lewis pair. It was found that the propensity for adduct formation can be influenced, perhaps even designed, by varying both organic and metallic components. Apart from the NHO backbone, the substituents on the exocyclic, olefinic carbon have emerged as interesting tuning site. The tendency to form adducts is ZnCl(2) > MgCl(2) > LiCl. If lactones coordinate to MgCl(2), the most likely binding mode is via the carbonyl oxygen. A chelating coordination cannot be ruled out and seems to gain importance upon increasing ring-size of the lactone. For a representative NHO, it is demonstrated that in a metal-free setting an initiating alcohol cannot be deprotonated, while in the presence of MgCl(2) the same process is exothermic with a low barrier.
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spelling pubmed-60175042018-11-13 The Lewis Pair Polymerization of Lactones Using Metal Halides and N-Heterocyclic Olefins: Theoretical Insights Meisner, Jan Karwounopoulos, Johannes Walther, Patrick Kästner, Johannes Naumann, Stefan Molecules Article Lewis pair polymerization employing N-Heterocyclic olefins (NHOs) and simple metal halides as co-catalysts has emerged as a useful tool to polymerize diverse lactones. To elucidate some of the mechanistic aspects that remain unclear to date and to better understand the impact of the metal species, computational methods have been applied. Several key aspects have been considered: (1) the formation of NHO-metal halide adducts has been evaluated for eight different NHOs and three different Lewis acids, (2) the coordination of four lactones to MgCl(2) was studied and (3) the deprotonation of an initiator (butanol) was investigated in the presence and absence of metal halide for one specific Lewis pair. It was found that the propensity for adduct formation can be influenced, perhaps even designed, by varying both organic and metallic components. Apart from the NHO backbone, the substituents on the exocyclic, olefinic carbon have emerged as interesting tuning site. The tendency to form adducts is ZnCl(2) > MgCl(2) > LiCl. If lactones coordinate to MgCl(2), the most likely binding mode is via the carbonyl oxygen. A chelating coordination cannot be ruled out and seems to gain importance upon increasing ring-size of the lactone. For a representative NHO, it is demonstrated that in a metal-free setting an initiating alcohol cannot be deprotonated, while in the presence of MgCl(2) the same process is exothermic with a low barrier. MDPI 2018-02-15 /pmc/articles/PMC6017504/ /pubmed/29462873 http://dx.doi.org/10.3390/molecules23020432 Text en © 2018 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Meisner, Jan
Karwounopoulos, Johannes
Walther, Patrick
Kästner, Johannes
Naumann, Stefan
The Lewis Pair Polymerization of Lactones Using Metal Halides and N-Heterocyclic Olefins: Theoretical Insights
title The Lewis Pair Polymerization of Lactones Using Metal Halides and N-Heterocyclic Olefins: Theoretical Insights
title_full The Lewis Pair Polymerization of Lactones Using Metal Halides and N-Heterocyclic Olefins: Theoretical Insights
title_fullStr The Lewis Pair Polymerization of Lactones Using Metal Halides and N-Heterocyclic Olefins: Theoretical Insights
title_full_unstemmed The Lewis Pair Polymerization of Lactones Using Metal Halides and N-Heterocyclic Olefins: Theoretical Insights
title_short The Lewis Pair Polymerization of Lactones Using Metal Halides and N-Heterocyclic Olefins: Theoretical Insights
title_sort lewis pair polymerization of lactones using metal halides and n-heterocyclic olefins: theoretical insights
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6017504/
https://www.ncbi.nlm.nih.gov/pubmed/29462873
http://dx.doi.org/10.3390/molecules23020432
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