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Graphene oxide based crosslinker for simultaneous enhancement of mechanical toughness and self-healing capability of conventional hydrogels

Extraordinary self-healing efficiency is rarely observed in mechanically strong hydrogels, which often limits the applications of hydrogels in biomedical engineering. We have presented an approach to utilize a special type of graphene oxide-based crosslinker (GOBC) for the simultaneous improvement o...

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Autores principales: Rumon, Md. Mahamudul Hasan, Sarkar, Stephen Don, Uddin, Md. Mosfeq, Alam, Md. Mahbub, Karobi, Sadia Nazneen, Ayfar, Aruna, Azam, Md. Shafiul, Roy, Chanchal Kumar
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/PMC8982252/
https://www.ncbi.nlm.nih.gov/pubmed/35424695
http://dx.doi.org/10.1039/d2ra00122e
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author Rumon, Md. Mahamudul Hasan
Sarkar, Stephen Don
Uddin, Md. Mosfeq
Alam, Md. Mahbub
Karobi, Sadia Nazneen
Ayfar, Aruna
Azam, Md. Shafiul
Roy, Chanchal Kumar
author_facet Rumon, Md. Mahamudul Hasan
Sarkar, Stephen Don
Uddin, Md. Mosfeq
Alam, Md. Mahbub
Karobi, Sadia Nazneen
Ayfar, Aruna
Azam, Md. Shafiul
Roy, Chanchal Kumar
author_sort Rumon, Md. Mahamudul Hasan
collection PubMed
description Extraordinary self-healing efficiency is rarely observed in mechanically strong hydrogels, which often limits the applications of hydrogels in biomedical engineering. We have presented an approach to utilize a special type of graphene oxide-based crosslinker (GOBC) for the simultaneous improvement of toughness and self-healing properties of conventional hydrogels. The GOBC has been prepared from graphene oxide (GO) by surface oxidation and further introduction of vinyl groups. It has been designed in such a way that the crosslinker is able to form both covalent bonds and noncovalent interactions with the polymer chains of hydrogels. To demonstrate the efficacy of GOBC, it was incorporated in a conventional polyacrylamide (PAM) and polyacrylic acid (PAA) hydrogel matrix, and the mechanical and self-healing properties of the prepared hydrogels were investigated. In PAM-GOBC hydrogels, it has been observed that the mechanical properties such as tensile strength, Young's modulus, and toughness are significantly improved by the incorporation of GOBC without compromising the self-healing efficiency. The PAM-GOBC hydrogel with a modulus of about 0.446 MPa exhibited about 70% stress healing efficiency after 40 h. Whereas, under the same conditions a PAM hydrogel with commonly used crosslinker N,N′-methylene-bis(acrylamide) of approximately the same modulus demonstrated no self-healing at all. Similar improvement of self-healing properties and toughness in PAA-GOBC hydrogel has also been observed which demonstrated the universality of the crosslinker. This crosslinker-based approach to improve the self-healing properties is expected to offer the possibility of the application of commonly used hydrogels in many different sectors, particularly in developing artificial tissues.
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spelling pubmed-89822522022-04-13 Graphene oxide based crosslinker for simultaneous enhancement of mechanical toughness and self-healing capability of conventional hydrogels Rumon, Md. Mahamudul Hasan Sarkar, Stephen Don Uddin, Md. Mosfeq Alam, Md. Mahbub Karobi, Sadia Nazneen Ayfar, Aruna Azam, Md. Shafiul Roy, Chanchal Kumar RSC Adv Chemistry Extraordinary self-healing efficiency is rarely observed in mechanically strong hydrogels, which often limits the applications of hydrogels in biomedical engineering. We have presented an approach to utilize a special type of graphene oxide-based crosslinker (GOBC) for the simultaneous improvement of toughness and self-healing properties of conventional hydrogels. The GOBC has been prepared from graphene oxide (GO) by surface oxidation and further introduction of vinyl groups. It has been designed in such a way that the crosslinker is able to form both covalent bonds and noncovalent interactions with the polymer chains of hydrogels. To demonstrate the efficacy of GOBC, it was incorporated in a conventional polyacrylamide (PAM) and polyacrylic acid (PAA) hydrogel matrix, and the mechanical and self-healing properties of the prepared hydrogels were investigated. In PAM-GOBC hydrogels, it has been observed that the mechanical properties such as tensile strength, Young's modulus, and toughness are significantly improved by the incorporation of GOBC without compromising the self-healing efficiency. The PAM-GOBC hydrogel with a modulus of about 0.446 MPa exhibited about 70% stress healing efficiency after 40 h. Whereas, under the same conditions a PAM hydrogel with commonly used crosslinker N,N′-methylene-bis(acrylamide) of approximately the same modulus demonstrated no self-healing at all. Similar improvement of self-healing properties and toughness in PAA-GOBC hydrogel has also been observed which demonstrated the universality of the crosslinker. This crosslinker-based approach to improve the self-healing properties is expected to offer the possibility of the application of commonly used hydrogels in many different sectors, particularly in developing artificial tissues. The Royal Society of Chemistry 2022-03-07 /pmc/articles/PMC8982252/ /pubmed/35424695 http://dx.doi.org/10.1039/d2ra00122e Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Rumon, Md. Mahamudul Hasan
Sarkar, Stephen Don
Uddin, Md. Mosfeq
Alam, Md. Mahbub
Karobi, Sadia Nazneen
Ayfar, Aruna
Azam, Md. Shafiul
Roy, Chanchal Kumar
Graphene oxide based crosslinker for simultaneous enhancement of mechanical toughness and self-healing capability of conventional hydrogels
title Graphene oxide based crosslinker for simultaneous enhancement of mechanical toughness and self-healing capability of conventional hydrogels
title_full Graphene oxide based crosslinker for simultaneous enhancement of mechanical toughness and self-healing capability of conventional hydrogels
title_fullStr Graphene oxide based crosslinker for simultaneous enhancement of mechanical toughness and self-healing capability of conventional hydrogels
title_full_unstemmed Graphene oxide based crosslinker for simultaneous enhancement of mechanical toughness and self-healing capability of conventional hydrogels
title_short Graphene oxide based crosslinker for simultaneous enhancement of mechanical toughness and self-healing capability of conventional hydrogels
title_sort graphene oxide based crosslinker for simultaneous enhancement of mechanical toughness and self-healing capability of conventional hydrogels
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8982252/
https://www.ncbi.nlm.nih.gov/pubmed/35424695
http://dx.doi.org/10.1039/d2ra00122e
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