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Rheological, Thermal and Mechanical Characterization of Toughened Self-Healing Supramolecular Resins, Based on Hydrogen Bonding

This paper proposes the design of toughened self-healing supramolecular resins able to fulfill functional and structural requirements for industrial applications. These new nanocomposites are based on compounds acting as promotors of reversible self-healing interactions. Electrically conductive carb...

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Autores principales: Guadagno, Liberata, Raimondo, Marialuigia, Naddeo, Carlo, Vertuccio, Luigi, Russo, Salvatore, Iannuzzo, Generoso, Calabrese, Elisa
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9735688/
https://www.ncbi.nlm.nih.gov/pubmed/36500943
http://dx.doi.org/10.3390/nano12234322
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author Guadagno, Liberata
Raimondo, Marialuigia
Naddeo, Carlo
Vertuccio, Luigi
Russo, Salvatore
Iannuzzo, Generoso
Calabrese, Elisa
author_facet Guadagno, Liberata
Raimondo, Marialuigia
Naddeo, Carlo
Vertuccio, Luigi
Russo, Salvatore
Iannuzzo, Generoso
Calabrese, Elisa
author_sort Guadagno, Liberata
collection PubMed
description This paper proposes the design of toughened self-healing supramolecular resins able to fulfill functional and structural requirements for industrial applications. These new nanocomposites are based on compounds acting as promotors of reversible self-healing interactions. Electrically conductive carbon nanotubes, selected among those allowing to reach the electrical percolation threshold (EPT) with a very low amount of nanofiller, were dispersed in the self-healing polymeric matrix to contrast the electrical insulating properties of epoxy matrices, as required for many applications. The formulated supramolecular systems are thermally stable, up to 360 °C. Depending on the chemical formulation, the self-healing efficiency η, assessed by the fracture test, can reach almost the complete self-repairing efficiency (η = 99%). Studies on the complex viscosity of smart nanocomposites highlight that the effect of the nanofiller dominates over those due to the healing agents. The presence of healing compounds anchored to the hosting epoxy matrix determines a relevant increase in the glass transition temperature (T(g)), which results in values higher than 200 °C. Compared to the unfilled matrix, a rise from 189 °C to 223 °C is found for two of the proposed formulations.
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spelling pubmed-97356882022-12-11 Rheological, Thermal and Mechanical Characterization of Toughened Self-Healing Supramolecular Resins, Based on Hydrogen Bonding Guadagno, Liberata Raimondo, Marialuigia Naddeo, Carlo Vertuccio, Luigi Russo, Salvatore Iannuzzo, Generoso Calabrese, Elisa Nanomaterials (Basel) Article This paper proposes the design of toughened self-healing supramolecular resins able to fulfill functional and structural requirements for industrial applications. These new nanocomposites are based on compounds acting as promotors of reversible self-healing interactions. Electrically conductive carbon nanotubes, selected among those allowing to reach the electrical percolation threshold (EPT) with a very low amount of nanofiller, were dispersed in the self-healing polymeric matrix to contrast the electrical insulating properties of epoxy matrices, as required for many applications. The formulated supramolecular systems are thermally stable, up to 360 °C. Depending on the chemical formulation, the self-healing efficiency η, assessed by the fracture test, can reach almost the complete self-repairing efficiency (η = 99%). Studies on the complex viscosity of smart nanocomposites highlight that the effect of the nanofiller dominates over those due to the healing agents. The presence of healing compounds anchored to the hosting epoxy matrix determines a relevant increase in the glass transition temperature (T(g)), which results in values higher than 200 °C. Compared to the unfilled matrix, a rise from 189 °C to 223 °C is found for two of the proposed formulations. MDPI 2022-12-05 /pmc/articles/PMC9735688/ /pubmed/36500943 http://dx.doi.org/10.3390/nano12234322 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Guadagno, Liberata
Raimondo, Marialuigia
Naddeo, Carlo
Vertuccio, Luigi
Russo, Salvatore
Iannuzzo, Generoso
Calabrese, Elisa
Rheological, Thermal and Mechanical Characterization of Toughened Self-Healing Supramolecular Resins, Based on Hydrogen Bonding
title Rheological, Thermal and Mechanical Characterization of Toughened Self-Healing Supramolecular Resins, Based on Hydrogen Bonding
title_full Rheological, Thermal and Mechanical Characterization of Toughened Self-Healing Supramolecular Resins, Based on Hydrogen Bonding
title_fullStr Rheological, Thermal and Mechanical Characterization of Toughened Self-Healing Supramolecular Resins, Based on Hydrogen Bonding
title_full_unstemmed Rheological, Thermal and Mechanical Characterization of Toughened Self-Healing Supramolecular Resins, Based on Hydrogen Bonding
title_short Rheological, Thermal and Mechanical Characterization of Toughened Self-Healing Supramolecular Resins, Based on Hydrogen Bonding
title_sort rheological, thermal and mechanical characterization of toughened self-healing supramolecular resins, based on hydrogen bonding
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9735688/
https://www.ncbi.nlm.nih.gov/pubmed/36500943
http://dx.doi.org/10.3390/nano12234322
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