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Chain end-group selectivity using an organometallic Al(iii)/K(i) ring-opening copolymerization catalyst delivers high molar mass, monodisperse polyesters

Polyesters are important plastics, elastomers and fibres; efficient and selective polymerizations making predictable, high molar mass polymers are required. Here, a new type of catalyst for the ring-opening polymerization (ROCOP) of epoxides and anhydrides combines unusually high chain end-group sel...

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Autores principales: Diment, Wilfred T., Williams, Charlotte K.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9337735/
https://www.ncbi.nlm.nih.gov/pubmed/35974772
http://dx.doi.org/10.1039/d2sc02752f
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author Diment, Wilfred T.
Williams, Charlotte K.
author_facet Diment, Wilfred T.
Williams, Charlotte K.
author_sort Diment, Wilfred T.
collection PubMed
description Polyesters are important plastics, elastomers and fibres; efficient and selective polymerizations making predictable, high molar mass polymers are required. Here, a new type of catalyst for the ring-opening polymerization (ROCOP) of epoxides and anhydrides combines unusually high chain end-group selectivity, fast rates, and good molar mass control. The organometallic heterodinuclear Al(iii)/K(i) complex, applied with a diol, is tolerant to a range of epoxides/phthalic anhydride and produces only α,ω-hydroxyl telechelic polyesters with molar masses from 6–91 kg mol(−1), in all cases with monomodal distributions. As proof of its potential, high molar mass poly(vinyl cyclohexene oxide-alt-phthalic anhydride) (91 kg mol(−1)) shows 5× greater flexural strain at break (ε(b) = 3.7%) and 9× higher maximum flexural stress (σ(f) = 72.3 MPa) than the previously accessed medium molar mass samples (24 kg mol(−1)). It is also enchains phthalic anhydride, vinyl cyclohexene oxide and ε-decalactone, via switchable catalysis, to make high molar mass triblock polyesters (81 kg mol(−1), Đ = 1.04). This selective catalyst should be used in the future to qualify the properties of these ROCOP polyesters and to tune (multi)block polymer structures.
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spelling pubmed-93377352022-08-15 Chain end-group selectivity using an organometallic Al(iii)/K(i) ring-opening copolymerization catalyst delivers high molar mass, monodisperse polyesters Diment, Wilfred T. Williams, Charlotte K. Chem Sci Chemistry Polyesters are important plastics, elastomers and fibres; efficient and selective polymerizations making predictable, high molar mass polymers are required. Here, a new type of catalyst for the ring-opening polymerization (ROCOP) of epoxides and anhydrides combines unusually high chain end-group selectivity, fast rates, and good molar mass control. The organometallic heterodinuclear Al(iii)/K(i) complex, applied with a diol, is tolerant to a range of epoxides/phthalic anhydride and produces only α,ω-hydroxyl telechelic polyesters with molar masses from 6–91 kg mol(−1), in all cases with monomodal distributions. As proof of its potential, high molar mass poly(vinyl cyclohexene oxide-alt-phthalic anhydride) (91 kg mol(−1)) shows 5× greater flexural strain at break (ε(b) = 3.7%) and 9× higher maximum flexural stress (σ(f) = 72.3 MPa) than the previously accessed medium molar mass samples (24 kg mol(−1)). It is also enchains phthalic anhydride, vinyl cyclohexene oxide and ε-decalactone, via switchable catalysis, to make high molar mass triblock polyesters (81 kg mol(−1), Đ = 1.04). This selective catalyst should be used in the future to qualify the properties of these ROCOP polyesters and to tune (multi)block polymer structures. The Royal Society of Chemistry 2022-07-13 /pmc/articles/PMC9337735/ /pubmed/35974772 http://dx.doi.org/10.1039/d2sc02752f Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Diment, Wilfred T.
Williams, Charlotte K.
Chain end-group selectivity using an organometallic Al(iii)/K(i) ring-opening copolymerization catalyst delivers high molar mass, monodisperse polyesters
title Chain end-group selectivity using an organometallic Al(iii)/K(i) ring-opening copolymerization catalyst delivers high molar mass, monodisperse polyesters
title_full Chain end-group selectivity using an organometallic Al(iii)/K(i) ring-opening copolymerization catalyst delivers high molar mass, monodisperse polyesters
title_fullStr Chain end-group selectivity using an organometallic Al(iii)/K(i) ring-opening copolymerization catalyst delivers high molar mass, monodisperse polyesters
title_full_unstemmed Chain end-group selectivity using an organometallic Al(iii)/K(i) ring-opening copolymerization catalyst delivers high molar mass, monodisperse polyesters
title_short Chain end-group selectivity using an organometallic Al(iii)/K(i) ring-opening copolymerization catalyst delivers high molar mass, monodisperse polyesters
title_sort chain end-group selectivity using an organometallic al(iii)/k(i) ring-opening copolymerization catalyst delivers high molar mass, monodisperse polyesters
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9337735/
https://www.ncbi.nlm.nih.gov/pubmed/35974772
http://dx.doi.org/10.1039/d2sc02752f
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