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One-pot synthesis for gradient copolymers via concurrent tandem living radical polymerization: mild and selective transesterification of methyl acrylate through Al(acac)(3) with common alcohols

A series of gradient copolymers were synthesized by the ruthenium-catalyzed living radical polymerization (LRP) of methyl acrylate (MA) and aliphatic alcohols using aluminum acetylacetonate Al(acac)(3). In this polymerization system, Al(acac)(3) was successfully used not only as an additive for the...

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Autores principales: Huynh, Tam Thi-Thanh, Kim, Si Eun, Kim, Soon Cheon, Kim, Jin Chul, Park, Young Il, Jeong, Ji-Eun, Yeo, Hyeonuk, Lee, Sang-Ho
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9037116/
https://www.ncbi.nlm.nih.gov/pubmed/35479477
http://dx.doi.org/10.1039/d1ra04595d
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author Huynh, Tam Thi-Thanh
Kim, Si Eun
Kim, Soon Cheon
Kim, Jin Chul
Park, Young Il
Jeong, Ji-Eun
Yeo, Hyeonuk
Lee, Sang-Ho
author_facet Huynh, Tam Thi-Thanh
Kim, Si Eun
Kim, Soon Cheon
Kim, Jin Chul
Park, Young Il
Jeong, Ji-Eun
Yeo, Hyeonuk
Lee, Sang-Ho
author_sort Huynh, Tam Thi-Thanh
collection PubMed
description A series of gradient copolymers were synthesized by the ruthenium-catalyzed living radical polymerization (LRP) of methyl acrylate (MA) and aliphatic alcohols using aluminum acetylacetonate Al(acac)(3). In this polymerization system, Al(acac)(3) was successfully used not only as an additive for the Ru-catalyzed LRP but also as a catalyst for the selective transesterification of an unsaturated ester monomer in mild conditions in a process known as concurrent tandem living radical polymerization. The resulting MA-based gradient copolymers showed well-controlled molecular weight and distribution in a one-pot reaction and exhibited a well-controlled gradient sequence in their polymer chain. Control of transesterification and the metal-catalyzed living radical polymerization (Mt-LRP) rate varied depending on the concentration of the Al(acac)(3) and the structure of varying alcohols, which were confirmed by (1)H NMR, SEC, and DSC analysis. In particular, this research opens a new synthetic methodology for preparing acrylate-based gradient copolymers via concurrent tandem LRP not limited to the synthesis of methyl methacrylate types of gradient copolymers.
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spelling pubmed-90371162022-04-26 One-pot synthesis for gradient copolymers via concurrent tandem living radical polymerization: mild and selective transesterification of methyl acrylate through Al(acac)(3) with common alcohols Huynh, Tam Thi-Thanh Kim, Si Eun Kim, Soon Cheon Kim, Jin Chul Park, Young Il Jeong, Ji-Eun Yeo, Hyeonuk Lee, Sang-Ho RSC Adv Chemistry A series of gradient copolymers were synthesized by the ruthenium-catalyzed living radical polymerization (LRP) of methyl acrylate (MA) and aliphatic alcohols using aluminum acetylacetonate Al(acac)(3). In this polymerization system, Al(acac)(3) was successfully used not only as an additive for the Ru-catalyzed LRP but also as a catalyst for the selective transesterification of an unsaturated ester monomer in mild conditions in a process known as concurrent tandem living radical polymerization. The resulting MA-based gradient copolymers showed well-controlled molecular weight and distribution in a one-pot reaction and exhibited a well-controlled gradient sequence in their polymer chain. Control of transesterification and the metal-catalyzed living radical polymerization (Mt-LRP) rate varied depending on the concentration of the Al(acac)(3) and the structure of varying alcohols, which were confirmed by (1)H NMR, SEC, and DSC analysis. In particular, this research opens a new synthetic methodology for preparing acrylate-based gradient copolymers via concurrent tandem LRP not limited to the synthesis of methyl methacrylate types of gradient copolymers. The Royal Society of Chemistry 2021-07-28 /pmc/articles/PMC9037116/ /pubmed/35479477 http://dx.doi.org/10.1039/d1ra04595d Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Huynh, Tam Thi-Thanh
Kim, Si Eun
Kim, Soon Cheon
Kim, Jin Chul
Park, Young Il
Jeong, Ji-Eun
Yeo, Hyeonuk
Lee, Sang-Ho
One-pot synthesis for gradient copolymers via concurrent tandem living radical polymerization: mild and selective transesterification of methyl acrylate through Al(acac)(3) with common alcohols
title One-pot synthesis for gradient copolymers via concurrent tandem living radical polymerization: mild and selective transesterification of methyl acrylate through Al(acac)(3) with common alcohols
title_full One-pot synthesis for gradient copolymers via concurrent tandem living radical polymerization: mild and selective transesterification of methyl acrylate through Al(acac)(3) with common alcohols
title_fullStr One-pot synthesis for gradient copolymers via concurrent tandem living radical polymerization: mild and selective transesterification of methyl acrylate through Al(acac)(3) with common alcohols
title_full_unstemmed One-pot synthesis for gradient copolymers via concurrent tandem living radical polymerization: mild and selective transesterification of methyl acrylate through Al(acac)(3) with common alcohols
title_short One-pot synthesis for gradient copolymers via concurrent tandem living radical polymerization: mild and selective transesterification of methyl acrylate through Al(acac)(3) with common alcohols
title_sort one-pot synthesis for gradient copolymers via concurrent tandem living radical polymerization: mild and selective transesterification of methyl acrylate through al(acac)(3) with common alcohols
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9037116/
https://www.ncbi.nlm.nih.gov/pubmed/35479477
http://dx.doi.org/10.1039/d1ra04595d
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