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High-Strength Bio-Degradable Polymer Foams with Stable High Volume-Expansion Ratio Using Chain Extension and Green Supercritical Mixed-Gas Foaming

The preparation of biodegradable polymer foams with a stable high volume-expansion ratio (VER) is challenging. For example, poly (butylene adipate-co-terephthalate) (PBAT) foams have a low melt strength and high shrinkage. In this study, polylactic acid (PLA), which has a high VER and crystallinity,...

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Autores principales: Long, Haoyu, Xu, Hongsen, Shaoyu, Jingwen, Jiang, Tianchen, Zhuang, Wei, Li, Ming, Jin, Junyang, Ji, Lei, Ying, Hanjie, Zhu, Chenjie
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9963428/
https://www.ncbi.nlm.nih.gov/pubmed/36850179
http://dx.doi.org/10.3390/polym15040895
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author Long, Haoyu
Xu, Hongsen
Shaoyu, Jingwen
Jiang, Tianchen
Zhuang, Wei
Li, Ming
Jin, Junyang
Ji, Lei
Ying, Hanjie
Zhu, Chenjie
author_facet Long, Haoyu
Xu, Hongsen
Shaoyu, Jingwen
Jiang, Tianchen
Zhuang, Wei
Li, Ming
Jin, Junyang
Ji, Lei
Ying, Hanjie
Zhu, Chenjie
author_sort Long, Haoyu
collection PubMed
description The preparation of biodegradable polymer foams with a stable high volume-expansion ratio (VER) is challenging. For example, poly (butylene adipate-co-terephthalate) (PBAT) foams have a low melt strength and high shrinkage. In this study, polylactic acid (PLA), which has a high VER and crystallinity, was added to PBAT to reduce shrinkage during the supercritical molded-bead foaming process. The epoxy chain extender ADR4368 was used both as a chain extender and a compatibilizer to mitigate the linear chain structure and incompatibility and improve the foamability of PBAT. The branched-chain structure increased the energy-storage modulus (G’) and complex viscosity (η*), which are the key factors for the growth of cells, by 1–2 orders of magnitude. Subsequently, we innovatively used the CO(2) and N(2) composite gas method. The foam-shrinkage performance was further inhibited; the final foam had a VER of 23.39 and a stable cell was obtained. Finally, after steam forming, the results showed that the mechanical strength of the PBAT/PLA blended composite foam was considerably improved by the addition of PLA. The compressive strength (50%), bending strength, and fracture load by bending reached 270.23 kPa, 0.36 MPa, and 23.32 N, respectively. This study provides a potential strategy for the development of PBAT-based foam packaging materials with stable cell structure, high VER, and excellent mechanical strength.
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spelling pubmed-99634282023-02-26 High-Strength Bio-Degradable Polymer Foams with Stable High Volume-Expansion Ratio Using Chain Extension and Green Supercritical Mixed-Gas Foaming Long, Haoyu Xu, Hongsen Shaoyu, Jingwen Jiang, Tianchen Zhuang, Wei Li, Ming Jin, Junyang Ji, Lei Ying, Hanjie Zhu, Chenjie Polymers (Basel) Article The preparation of biodegradable polymer foams with a stable high volume-expansion ratio (VER) is challenging. For example, poly (butylene adipate-co-terephthalate) (PBAT) foams have a low melt strength and high shrinkage. In this study, polylactic acid (PLA), which has a high VER and crystallinity, was added to PBAT to reduce shrinkage during the supercritical molded-bead foaming process. The epoxy chain extender ADR4368 was used both as a chain extender and a compatibilizer to mitigate the linear chain structure and incompatibility and improve the foamability of PBAT. The branched-chain structure increased the energy-storage modulus (G’) and complex viscosity (η*), which are the key factors for the growth of cells, by 1–2 orders of magnitude. Subsequently, we innovatively used the CO(2) and N(2) composite gas method. The foam-shrinkage performance was further inhibited; the final foam had a VER of 23.39 and a stable cell was obtained. Finally, after steam forming, the results showed that the mechanical strength of the PBAT/PLA blended composite foam was considerably improved by the addition of PLA. The compressive strength (50%), bending strength, and fracture load by bending reached 270.23 kPa, 0.36 MPa, and 23.32 N, respectively. This study provides a potential strategy for the development of PBAT-based foam packaging materials with stable cell structure, high VER, and excellent mechanical strength. MDPI 2023-02-10 /pmc/articles/PMC9963428/ /pubmed/36850179 http://dx.doi.org/10.3390/polym15040895 Text en © 2023 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
Long, Haoyu
Xu, Hongsen
Shaoyu, Jingwen
Jiang, Tianchen
Zhuang, Wei
Li, Ming
Jin, Junyang
Ji, Lei
Ying, Hanjie
Zhu, Chenjie
High-Strength Bio-Degradable Polymer Foams with Stable High Volume-Expansion Ratio Using Chain Extension and Green Supercritical Mixed-Gas Foaming
title High-Strength Bio-Degradable Polymer Foams with Stable High Volume-Expansion Ratio Using Chain Extension and Green Supercritical Mixed-Gas Foaming
title_full High-Strength Bio-Degradable Polymer Foams with Stable High Volume-Expansion Ratio Using Chain Extension and Green Supercritical Mixed-Gas Foaming
title_fullStr High-Strength Bio-Degradable Polymer Foams with Stable High Volume-Expansion Ratio Using Chain Extension and Green Supercritical Mixed-Gas Foaming
title_full_unstemmed High-Strength Bio-Degradable Polymer Foams with Stable High Volume-Expansion Ratio Using Chain Extension and Green Supercritical Mixed-Gas Foaming
title_short High-Strength Bio-Degradable Polymer Foams with Stable High Volume-Expansion Ratio Using Chain Extension and Green Supercritical Mixed-Gas Foaming
title_sort high-strength bio-degradable polymer foams with stable high volume-expansion ratio using chain extension and green supercritical mixed-gas foaming
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9963428/
https://www.ncbi.nlm.nih.gov/pubmed/36850179
http://dx.doi.org/10.3390/polym15040895
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