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Competitive Supramolecular Associations Mediate the Viscoelasticity of Binary Hydrogels

[Image: see text] Supramolecular polymers are known to form strong and resilient hydrogels which can take up large amounts of water while exhibiting ease of processing and self-healing. They also possess similarities with networks of biological macromolecules. The combination of these features makes...

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Autores principales: Vereroudakis, Emmanouil, Bantawa, Minaspi, Lafleur, René P. M., Parisi, Daniele, Matsumoto, Nicholas M., Peeters, Joris W., Del Gado, Emanuela, Meijer, E. W., Vlassopoulos, Dimitris
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2020
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7453573/
https://www.ncbi.nlm.nih.gov/pubmed/32875081
http://dx.doi.org/10.1021/acscentsci.0c00279
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author Vereroudakis, Emmanouil
Bantawa, Minaspi
Lafleur, René P. M.
Parisi, Daniele
Matsumoto, Nicholas M.
Peeters, Joris W.
Del Gado, Emanuela
Meijer, E. W.
Vlassopoulos, Dimitris
author_facet Vereroudakis, Emmanouil
Bantawa, Minaspi
Lafleur, René P. M.
Parisi, Daniele
Matsumoto, Nicholas M.
Peeters, Joris W.
Del Gado, Emanuela
Meijer, E. W.
Vlassopoulos, Dimitris
author_sort Vereroudakis, Emmanouil
collection PubMed
description [Image: see text] Supramolecular polymers are known to form strong and resilient hydrogels which can take up large amounts of water while exhibiting ease of processing and self-healing. They also possess similarities with networks of biological macromolecules. The combination of these features makes supramolecular polymers ideal candidates for studying mechanisms and consequences of self-assembly, which are relevant to biological materials. At the same time, this renders investigations of mixed hydrogels based on different supramolecular compounds necessary, since this substantially widens their applicability. Here, we address unusual viscoelastic properties of a class of binary hydrogels made by mixing fibrillar supramolecular polymers that are formed from two compounds: 1,3,5-benzene-tricarboxamide decorated with aliphatic chains terminated by tetra(ethylene glycol) (BTA) and a 20 kg/mol telechelic poly(ethylene glycol) decorated with the same hydrogen bonding BTA motif on both ends (BTA-PEG-BTA). Using a suite of experimental and simulation techniques, we find that the respective single-compound-based supramolecular systems form very different networks which exhibit drastically different rheology. More strikingly, mixing the compounds results in a non-monotonic dependence of modulus and viscosity on composition, suggesting a competition between interactions of the two compounds, which can then be used to fine-tune the mechanical properties. Simulations offer insight into the nature of this competition and their remarkable qualitative agreement with the experimental results is promising for the design of mixed hydrogels with desired and tunable properties. Their combination with a sensitive dynamic probe (here rheology) offer a powerful toolbox to explore the unique properties of binary hydrogel mixtures.
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spelling pubmed-74535732020-08-31 Competitive Supramolecular Associations Mediate the Viscoelasticity of Binary Hydrogels Vereroudakis, Emmanouil Bantawa, Minaspi Lafleur, René P. M. Parisi, Daniele Matsumoto, Nicholas M. Peeters, Joris W. Del Gado, Emanuela Meijer, E. W. Vlassopoulos, Dimitris ACS Cent Sci [Image: see text] Supramolecular polymers are known to form strong and resilient hydrogels which can take up large amounts of water while exhibiting ease of processing and self-healing. They also possess similarities with networks of biological macromolecules. The combination of these features makes supramolecular polymers ideal candidates for studying mechanisms and consequences of self-assembly, which are relevant to biological materials. At the same time, this renders investigations of mixed hydrogels based on different supramolecular compounds necessary, since this substantially widens their applicability. Here, we address unusual viscoelastic properties of a class of binary hydrogels made by mixing fibrillar supramolecular polymers that are formed from two compounds: 1,3,5-benzene-tricarboxamide decorated with aliphatic chains terminated by tetra(ethylene glycol) (BTA) and a 20 kg/mol telechelic poly(ethylene glycol) decorated with the same hydrogen bonding BTA motif on both ends (BTA-PEG-BTA). Using a suite of experimental and simulation techniques, we find that the respective single-compound-based supramolecular systems form very different networks which exhibit drastically different rheology. More strikingly, mixing the compounds results in a non-monotonic dependence of modulus and viscosity on composition, suggesting a competition between interactions of the two compounds, which can then be used to fine-tune the mechanical properties. Simulations offer insight into the nature of this competition and their remarkable qualitative agreement with the experimental results is promising for the design of mixed hydrogels with desired and tunable properties. Their combination with a sensitive dynamic probe (here rheology) offer a powerful toolbox to explore the unique properties of binary hydrogel mixtures. American Chemical Society 2020-07-28 2020-08-26 /pmc/articles/PMC7453573/ /pubmed/32875081 http://dx.doi.org/10.1021/acscentsci.0c00279 Text en Copyright © 2020 American Chemical Society This is an open access article published under an ACS AuthorChoice License (http://pubs.acs.org/page/policy/authorchoice_termsofuse.html) , which permits copying and redistribution of the article or any adaptations for non-commercial purposes.
spellingShingle Vereroudakis, Emmanouil
Bantawa, Minaspi
Lafleur, René P. M.
Parisi, Daniele
Matsumoto, Nicholas M.
Peeters, Joris W.
Del Gado, Emanuela
Meijer, E. W.
Vlassopoulos, Dimitris
Competitive Supramolecular Associations Mediate the Viscoelasticity of Binary Hydrogels
title Competitive Supramolecular Associations Mediate the Viscoelasticity of Binary Hydrogels
title_full Competitive Supramolecular Associations Mediate the Viscoelasticity of Binary Hydrogels
title_fullStr Competitive Supramolecular Associations Mediate the Viscoelasticity of Binary Hydrogels
title_full_unstemmed Competitive Supramolecular Associations Mediate the Viscoelasticity of Binary Hydrogels
title_short Competitive Supramolecular Associations Mediate the Viscoelasticity of Binary Hydrogels
title_sort competitive supramolecular associations mediate the viscoelasticity of binary hydrogels
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7453573/
https://www.ncbi.nlm.nih.gov/pubmed/32875081
http://dx.doi.org/10.1021/acscentsci.0c00279
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