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Self-curing super-stretchable polymer/microgel complex coacervate gels without covalent bond formation

Elastic physical gels are highly desirable because they can be conveniently prepared and readily shaped. Unfortunately, many elastic physical gels prepared in water require in situ free-radical polymerization during the gel formation stage. In contrast, complex coacervate gels are physical gels that...

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Autores principales: Wu, Shanglin, Zhu, Mingning, Lu, Dongdong, Milani, Amir H., Lian, Qing, Fielding, Lee A., Saunders, Brian R., Derry, Matthew J., Armes, Steven P., Adlam, Daman, Hoyland, Judith A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Royal Society of Chemistry 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6849882/
https://www.ncbi.nlm.nih.gov/pubmed/31803457
http://dx.doi.org/10.1039/c9sc02555c
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author Wu, Shanglin
Zhu, Mingning
Lu, Dongdong
Milani, Amir H.
Lian, Qing
Fielding, Lee A.
Saunders, Brian R.
Derry, Matthew J.
Armes, Steven P.
Adlam, Daman
Hoyland, Judith A.
author_facet Wu, Shanglin
Zhu, Mingning
Lu, Dongdong
Milani, Amir H.
Lian, Qing
Fielding, Lee A.
Saunders, Brian R.
Derry, Matthew J.
Armes, Steven P.
Adlam, Daman
Hoyland, Judith A.
author_sort Wu, Shanglin
collection PubMed
description Elastic physical gels are highly desirable because they can be conveniently prepared and readily shaped. Unfortunately, many elastic physical gels prepared in water require in situ free-radical polymerization during the gel formation stage. In contrast, complex coacervate gels are physical gels that can be prepared by simply mixing two pre-formed oppositely-charged polyelectrolytes. However, as far as we are aware, highly elastic complex coacervate gels have not yet been reported. Herein, we combine polyanionic microgel particles with a well-known commercially-available cationic polyelectrolyte to prepare polymer/microgel complex coacervate (PMCC) physical gels. This new family of gels requires annealing at only 37 °C and behaves like a covalent gel but does not form covalent bonds. Thermal reconfiguration of the dynamic ionic bonds transforms the shapeable pre-gel into a highly elastic gel that is super-stretchable, adhesive, self-healing, highly swellable and can be further toughened using Ca(2+) as an ionic crosslinker. Our PMCC gels have excellent potential for applications as engineering gels and structural biomaterials, as well as for wound healing and water purification.
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spelling pubmed-68498822019-12-04 Self-curing super-stretchable polymer/microgel complex coacervate gels without covalent bond formation Wu, Shanglin Zhu, Mingning Lu, Dongdong Milani, Amir H. Lian, Qing Fielding, Lee A. Saunders, Brian R. Derry, Matthew J. Armes, Steven P. Adlam, Daman Hoyland, Judith A. Chem Sci Chemistry Elastic physical gels are highly desirable because they can be conveniently prepared and readily shaped. Unfortunately, many elastic physical gels prepared in water require in situ free-radical polymerization during the gel formation stage. In contrast, complex coacervate gels are physical gels that can be prepared by simply mixing two pre-formed oppositely-charged polyelectrolytes. However, as far as we are aware, highly elastic complex coacervate gels have not yet been reported. Herein, we combine polyanionic microgel particles with a well-known commercially-available cationic polyelectrolyte to prepare polymer/microgel complex coacervate (PMCC) physical gels. This new family of gels requires annealing at only 37 °C and behaves like a covalent gel but does not form covalent bonds. Thermal reconfiguration of the dynamic ionic bonds transforms the shapeable pre-gel into a highly elastic gel that is super-stretchable, adhesive, self-healing, highly swellable and can be further toughened using Ca(2+) as an ionic crosslinker. Our PMCC gels have excellent potential for applications as engineering gels and structural biomaterials, as well as for wound healing and water purification. Royal Society of Chemistry 2019-08-03 /pmc/articles/PMC6849882/ /pubmed/31803457 http://dx.doi.org/10.1039/c9sc02555c Text en This journal is © The Royal Society of Chemistry 2019 http://creativecommons.org/licenses/by-nc/3.0/ This article is freely available. This article is licensed under a Creative Commons Attribution Non Commercial 3.0 Unported Licence (CC BY-NC 3.0)
spellingShingle Chemistry
Wu, Shanglin
Zhu, Mingning
Lu, Dongdong
Milani, Amir H.
Lian, Qing
Fielding, Lee A.
Saunders, Brian R.
Derry, Matthew J.
Armes, Steven P.
Adlam, Daman
Hoyland, Judith A.
Self-curing super-stretchable polymer/microgel complex coacervate gels without covalent bond formation
title Self-curing super-stretchable polymer/microgel complex coacervate gels without covalent bond formation
title_full Self-curing super-stretchable polymer/microgel complex coacervate gels without covalent bond formation
title_fullStr Self-curing super-stretchable polymer/microgel complex coacervate gels without covalent bond formation
title_full_unstemmed Self-curing super-stretchable polymer/microgel complex coacervate gels without covalent bond formation
title_short Self-curing super-stretchable polymer/microgel complex coacervate gels without covalent bond formation
title_sort self-curing super-stretchable polymer/microgel complex coacervate gels without covalent bond formation
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6849882/
https://www.ncbi.nlm.nih.gov/pubmed/31803457
http://dx.doi.org/10.1039/c9sc02555c
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