Cargando…

A Rigid–Flexible and Multi-Siloxane Bridge Strategy for Toughening Epoxy Resin with Promising Flame Retardancy, Mechanical, and Dielectric Properties

Developing highly efficient and multifunctional epoxy resins (EPs) that overcome the shortcomings of flammability and brittleness is crucial for pursuing sustainable and safe application but remains a huge challenge. In this paper, a novel biomass-containing intumescent flame retardant containing a...

Descripción completa

Detalles Bibliográficos
Autores principales: Li, Dingsi, Lin, Shufeng, Hao, Jiahui, He, Baohan, Zhang, Huagui, Chen, Mingfeng
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10531251/
https://www.ncbi.nlm.nih.gov/pubmed/37762362
http://dx.doi.org/10.3390/ijms241814059
_version_ 1785111674665041920
author Li, Dingsi
Lin, Shufeng
Hao, Jiahui
He, Baohan
Zhang, Huagui
Chen, Mingfeng
author_facet Li, Dingsi
Lin, Shufeng
Hao, Jiahui
He, Baohan
Zhang, Huagui
Chen, Mingfeng
author_sort Li, Dingsi
collection PubMed
description Developing highly efficient and multifunctional epoxy resins (EPs) that overcome the shortcomings of flammability and brittleness is crucial for pursuing sustainable and safe application but remains a huge challenge. In this paper, a novel biomass-containing intumescent flame retardant containing a rigid–flexible and multi-siloxane bridge structure (DPB) was synthesized using siloxane; 9,10-dihydro-9-oxa-10-phosphaphenanthrene 10-oxide (DOPO); and biomass vanillin. DPB could facilitate the formation of a carbon residual with an intumescent structure, which effectively blocked the propagation of heat and oxygen. As a result, the peak heat release rate (pHRR) and total heat release (THR) of DPB/EP-7.5 decreased by 38.8% and 45.0%, respectively. In terms of mechanical properties, the tensile and flexural elongations at break of DPB/EP-7.5 increased by 77.2% and 105.3%, respectively. Impressively, DPB/EP-7.5 had excellent dielectric properties, with a dielectric constant of 2.5–2.9. This was due to the Si-O bonds (multi-siloxane bridges) contained in DPB/EP, which can quench the polarization behavior of the hydroxyl group. This paper provides a facile strategy for the preparation of multifunctional EP, which will pave the way for the promotion and application of EP in the high-end field.
format Online
Article
Text
id pubmed-10531251
institution National Center for Biotechnology Information
language English
publishDate 2023
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-105312512023-09-28 A Rigid–Flexible and Multi-Siloxane Bridge Strategy for Toughening Epoxy Resin with Promising Flame Retardancy, Mechanical, and Dielectric Properties Li, Dingsi Lin, Shufeng Hao, Jiahui He, Baohan Zhang, Huagui Chen, Mingfeng Int J Mol Sci Article Developing highly efficient and multifunctional epoxy resins (EPs) that overcome the shortcomings of flammability and brittleness is crucial for pursuing sustainable and safe application but remains a huge challenge. In this paper, a novel biomass-containing intumescent flame retardant containing a rigid–flexible and multi-siloxane bridge structure (DPB) was synthesized using siloxane; 9,10-dihydro-9-oxa-10-phosphaphenanthrene 10-oxide (DOPO); and biomass vanillin. DPB could facilitate the formation of a carbon residual with an intumescent structure, which effectively blocked the propagation of heat and oxygen. As a result, the peak heat release rate (pHRR) and total heat release (THR) of DPB/EP-7.5 decreased by 38.8% and 45.0%, respectively. In terms of mechanical properties, the tensile and flexural elongations at break of DPB/EP-7.5 increased by 77.2% and 105.3%, respectively. Impressively, DPB/EP-7.5 had excellent dielectric properties, with a dielectric constant of 2.5–2.9. This was due to the Si-O bonds (multi-siloxane bridges) contained in DPB/EP, which can quench the polarization behavior of the hydroxyl group. This paper provides a facile strategy for the preparation of multifunctional EP, which will pave the way for the promotion and application of EP in the high-end field. MDPI 2023-09-13 /pmc/articles/PMC10531251/ /pubmed/37762362 http://dx.doi.org/10.3390/ijms241814059 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
Li, Dingsi
Lin, Shufeng
Hao, Jiahui
He, Baohan
Zhang, Huagui
Chen, Mingfeng
A Rigid–Flexible and Multi-Siloxane Bridge Strategy for Toughening Epoxy Resin with Promising Flame Retardancy, Mechanical, and Dielectric Properties
title A Rigid–Flexible and Multi-Siloxane Bridge Strategy for Toughening Epoxy Resin with Promising Flame Retardancy, Mechanical, and Dielectric Properties
title_full A Rigid–Flexible and Multi-Siloxane Bridge Strategy for Toughening Epoxy Resin with Promising Flame Retardancy, Mechanical, and Dielectric Properties
title_fullStr A Rigid–Flexible and Multi-Siloxane Bridge Strategy for Toughening Epoxy Resin with Promising Flame Retardancy, Mechanical, and Dielectric Properties
title_full_unstemmed A Rigid–Flexible and Multi-Siloxane Bridge Strategy for Toughening Epoxy Resin with Promising Flame Retardancy, Mechanical, and Dielectric Properties
title_short A Rigid–Flexible and Multi-Siloxane Bridge Strategy for Toughening Epoxy Resin with Promising Flame Retardancy, Mechanical, and Dielectric Properties
title_sort rigid–flexible and multi-siloxane bridge strategy for toughening epoxy resin with promising flame retardancy, mechanical, and dielectric properties
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10531251/
https://www.ncbi.nlm.nih.gov/pubmed/37762362
http://dx.doi.org/10.3390/ijms241814059
work_keys_str_mv AT lidingsi arigidflexibleandmultisiloxanebridgestrategyfortougheningepoxyresinwithpromisingflameretardancymechanicalanddielectricproperties
AT linshufeng arigidflexibleandmultisiloxanebridgestrategyfortougheningepoxyresinwithpromisingflameretardancymechanicalanddielectricproperties
AT haojiahui arigidflexibleandmultisiloxanebridgestrategyfortougheningepoxyresinwithpromisingflameretardancymechanicalanddielectricproperties
AT hebaohan arigidflexibleandmultisiloxanebridgestrategyfortougheningepoxyresinwithpromisingflameretardancymechanicalanddielectricproperties
AT zhanghuagui arigidflexibleandmultisiloxanebridgestrategyfortougheningepoxyresinwithpromisingflameretardancymechanicalanddielectricproperties
AT chenmingfeng arigidflexibleandmultisiloxanebridgestrategyfortougheningepoxyresinwithpromisingflameretardancymechanicalanddielectricproperties
AT lidingsi rigidflexibleandmultisiloxanebridgestrategyfortougheningepoxyresinwithpromisingflameretardancymechanicalanddielectricproperties
AT linshufeng rigidflexibleandmultisiloxanebridgestrategyfortougheningepoxyresinwithpromisingflameretardancymechanicalanddielectricproperties
AT haojiahui rigidflexibleandmultisiloxanebridgestrategyfortougheningepoxyresinwithpromisingflameretardancymechanicalanddielectricproperties
AT hebaohan rigidflexibleandmultisiloxanebridgestrategyfortougheningepoxyresinwithpromisingflameretardancymechanicalanddielectricproperties
AT zhanghuagui rigidflexibleandmultisiloxanebridgestrategyfortougheningepoxyresinwithpromisingflameretardancymechanicalanddielectricproperties
AT chenmingfeng rigidflexibleandmultisiloxanebridgestrategyfortougheningepoxyresinwithpromisingflameretardancymechanicalanddielectricproperties