Cargando…

Molecular Differentiated Initiator Reactivity in the Synthesis of Poly(caprolactone)-Based Hydrophobic Homopolymer and Amphiphilic Core Corona Star Polymers

Macromolecules that possess three-dimensional, branched molecular structures are of great interest because they exhibit significantly differentiated application performance compared to conventional linear (straight chain) polymers. This paper reports the synthesis of 3- and 4-arm star branched polym...

Descripción completa

Detalles Bibliográficos
Autores principales: Deng, Eileen, Nguyen, Nam T., Hild, Frédéric, Hamilton, Ian E., Dimitrakis, Georgios, Kingman, Samuel W., Lau, Phei-Li, Irvine, Derek J.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6332146/
https://www.ncbi.nlm.nih.gov/pubmed/26569198
http://dx.doi.org/10.3390/molecules201119681
_version_ 1783387281568038912
author Deng, Eileen
Nguyen, Nam T.
Hild, Frédéric
Hamilton, Ian E.
Dimitrakis, Georgios
Kingman, Samuel W.
Lau, Phei-Li
Irvine, Derek J.
author_facet Deng, Eileen
Nguyen, Nam T.
Hild, Frédéric
Hamilton, Ian E.
Dimitrakis, Georgios
Kingman, Samuel W.
Lau, Phei-Li
Irvine, Derek J.
author_sort Deng, Eileen
collection PubMed
description Macromolecules that possess three-dimensional, branched molecular structures are of great interest because they exhibit significantly differentiated application performance compared to conventional linear (straight chain) polymers. This paper reports the synthesis of 3- and 4-arm star branched polymers via ring opening polymerisation (ROP) utilising multi-functional hydroxyl initiators and Sn(Oct)(2) as precatalyst. The structures produced include mono-functional hydrophobic and multi-functional amphiphilic core corona stars. The characteristics of the synthetic process were shown to be principally dependent upon the physical/dielectric properties of the initiators used. ROP’s using initiators that were more available to become directly involved with the Sn(Oct)(2) in the “in-situ” formation of the true catalytic species were observed to require shorter reaction times. Use of microwave heating (MWH) in homopolymer star synthesis reduced reaction times compared to conventional heating (CH) equivalents, this was attributed to an increased rate of “in-situ” catalyst formation. However, in amphiphilic core corona star formation, the MWH polymerisations exhibited slower propagation rates than CH equivalents. This was attributed to macro-structuring within the reaction medium, which reduced the potential for reaction. It was concluded that CH experiments were less affected by this macro-structuring because it was disrupted by the thermal currents/gradients caused by the conductive/convective heating mechanisms. These gradients are much reduced/absent with MWH because it selectively heats specific species simultaneously throughout the entire volume of the reaction medium. These partitioning problems were overcome by introducing additional quantities of the species that had been determined to selectively heat.
format Online
Article
Text
id pubmed-6332146
institution National Center for Biotechnology Information
language English
publishDate 2015
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-63321462019-01-24 Molecular Differentiated Initiator Reactivity in the Synthesis of Poly(caprolactone)-Based Hydrophobic Homopolymer and Amphiphilic Core Corona Star Polymers Deng, Eileen Nguyen, Nam T. Hild, Frédéric Hamilton, Ian E. Dimitrakis, Georgios Kingman, Samuel W. Lau, Phei-Li Irvine, Derek J. Molecules Article Macromolecules that possess three-dimensional, branched molecular structures are of great interest because they exhibit significantly differentiated application performance compared to conventional linear (straight chain) polymers. This paper reports the synthesis of 3- and 4-arm star branched polymers via ring opening polymerisation (ROP) utilising multi-functional hydroxyl initiators and Sn(Oct)(2) as precatalyst. The structures produced include mono-functional hydrophobic and multi-functional amphiphilic core corona stars. The characteristics of the synthetic process were shown to be principally dependent upon the physical/dielectric properties of the initiators used. ROP’s using initiators that were more available to become directly involved with the Sn(Oct)(2) in the “in-situ” formation of the true catalytic species were observed to require shorter reaction times. Use of microwave heating (MWH) in homopolymer star synthesis reduced reaction times compared to conventional heating (CH) equivalents, this was attributed to an increased rate of “in-situ” catalyst formation. However, in amphiphilic core corona star formation, the MWH polymerisations exhibited slower propagation rates than CH equivalents. This was attributed to macro-structuring within the reaction medium, which reduced the potential for reaction. It was concluded that CH experiments were less affected by this macro-structuring because it was disrupted by the thermal currents/gradients caused by the conductive/convective heating mechanisms. These gradients are much reduced/absent with MWH because it selectively heats specific species simultaneously throughout the entire volume of the reaction medium. These partitioning problems were overcome by introducing additional quantities of the species that had been determined to selectively heat. MDPI 2015-11-09 /pmc/articles/PMC6332146/ /pubmed/26569198 http://dx.doi.org/10.3390/molecules201119681 Text en © 2015 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons by Attribution (CC-BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Deng, Eileen
Nguyen, Nam T.
Hild, Frédéric
Hamilton, Ian E.
Dimitrakis, Georgios
Kingman, Samuel W.
Lau, Phei-Li
Irvine, Derek J.
Molecular Differentiated Initiator Reactivity in the Synthesis of Poly(caprolactone)-Based Hydrophobic Homopolymer and Amphiphilic Core Corona Star Polymers
title Molecular Differentiated Initiator Reactivity in the Synthesis of Poly(caprolactone)-Based Hydrophobic Homopolymer and Amphiphilic Core Corona Star Polymers
title_full Molecular Differentiated Initiator Reactivity in the Synthesis of Poly(caprolactone)-Based Hydrophobic Homopolymer and Amphiphilic Core Corona Star Polymers
title_fullStr Molecular Differentiated Initiator Reactivity in the Synthesis of Poly(caprolactone)-Based Hydrophobic Homopolymer and Amphiphilic Core Corona Star Polymers
title_full_unstemmed Molecular Differentiated Initiator Reactivity in the Synthesis of Poly(caprolactone)-Based Hydrophobic Homopolymer and Amphiphilic Core Corona Star Polymers
title_short Molecular Differentiated Initiator Reactivity in the Synthesis of Poly(caprolactone)-Based Hydrophobic Homopolymer and Amphiphilic Core Corona Star Polymers
title_sort molecular differentiated initiator reactivity in the synthesis of poly(caprolactone)-based hydrophobic homopolymer and amphiphilic core corona star polymers
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6332146/
https://www.ncbi.nlm.nih.gov/pubmed/26569198
http://dx.doi.org/10.3390/molecules201119681
work_keys_str_mv AT dengeileen moleculardifferentiatedinitiatorreactivityinthesynthesisofpolycaprolactonebasedhydrophobichomopolymerandamphiphiliccorecoronastarpolymers
AT nguyennamt moleculardifferentiatedinitiatorreactivityinthesynthesisofpolycaprolactonebasedhydrophobichomopolymerandamphiphiliccorecoronastarpolymers
AT hildfrederic moleculardifferentiatedinitiatorreactivityinthesynthesisofpolycaprolactonebasedhydrophobichomopolymerandamphiphiliccorecoronastarpolymers
AT hamiltoniane moleculardifferentiatedinitiatorreactivityinthesynthesisofpolycaprolactonebasedhydrophobichomopolymerandamphiphiliccorecoronastarpolymers
AT dimitrakisgeorgios moleculardifferentiatedinitiatorreactivityinthesynthesisofpolycaprolactonebasedhydrophobichomopolymerandamphiphiliccorecoronastarpolymers
AT kingmansamuelw moleculardifferentiatedinitiatorreactivityinthesynthesisofpolycaprolactonebasedhydrophobichomopolymerandamphiphiliccorecoronastarpolymers
AT laupheili moleculardifferentiatedinitiatorreactivityinthesynthesisofpolycaprolactonebasedhydrophobichomopolymerandamphiphiliccorecoronastarpolymers
AT irvinederekj moleculardifferentiatedinitiatorreactivityinthesynthesisofpolycaprolactonebasedhydrophobichomopolymerandamphiphiliccorecoronastarpolymers