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Design of Hierarchically Tailored Hybrids Based on Nickle Nanocrystal-Decorated Manganese Dioxides for Enhanced Fire Safety of Epoxy Resin

A novel and hierarchical hybrid composite (MnO(2)@CHS@SA@Ni) was synthesized utilizing manganese dioxide (MnO(2)) nanosheets as the core structure, self-assembly chitosan (CHS), sodium alginate (SA) and nickel species (Ni) as surface layers, and it was further incorporated into an epoxy matrix for a...

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Autores principales: Yuan, Yao, Liang, Chen, Yuen, Anthony Chun Yin, Xu, Lulu, Yu, Bin, Cao, Chengfei, Wang, Wei
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9697679/
https://www.ncbi.nlm.nih.gov/pubmed/36430185
http://dx.doi.org/10.3390/ijms232213711
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author Yuan, Yao
Liang, Chen
Yuen, Anthony Chun Yin
Xu, Lulu
Yu, Bin
Cao, Chengfei
Wang, Wei
author_facet Yuan, Yao
Liang, Chen
Yuen, Anthony Chun Yin
Xu, Lulu
Yu, Bin
Cao, Chengfei
Wang, Wei
author_sort Yuan, Yao
collection PubMed
description A novel and hierarchical hybrid composite (MnO(2)@CHS@SA@Ni) was synthesized utilizing manganese dioxide (MnO(2)) nanosheets as the core structure, self-assembly chitosan (CHS), sodium alginate (SA) and nickel species (Ni) as surface layers, and it was further incorporated into an epoxy matrix for achieving fire hazard suppression via surface self-assembly technology. Herein, the resultant hybrid epoxy composite possessed an exceptional nano-barrier and synergistic charring effect to aid the formation of a compact layered structure that enhanced its fire-resistive effectiveness. As a result, the addition of only 2 wt% MnO(2)@CHS@SA@Ni hybrids led to a dramatic reduction in the peak heat release rate and total heat release values (by ca. 33% and 27.8%) of the epoxy matrix. Notably, the peak smoke production rate and total smoke production values of EP/MnO(2)@CHS@SA@Ni 2% were decreased by ca. 16.9 and 38.4% compared to the corresponding data of pristine EP. This was accompanied by the suppression of toxic CO, NO release and the diffusion of thermal pyrolysis gases during combustion through TG-IR results. Overall, a significant fire-testing outcome of the proposed hierarchical structure was proven to be effective for epoxy composites in terms of flammability, smoke and toxicity reductions, optimizing their prospects in other polymeric materials in the respective fields.
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spelling pubmed-96976792022-11-26 Design of Hierarchically Tailored Hybrids Based on Nickle Nanocrystal-Decorated Manganese Dioxides for Enhanced Fire Safety of Epoxy Resin Yuan, Yao Liang, Chen Yuen, Anthony Chun Yin Xu, Lulu Yu, Bin Cao, Chengfei Wang, Wei Int J Mol Sci Article A novel and hierarchical hybrid composite (MnO(2)@CHS@SA@Ni) was synthesized utilizing manganese dioxide (MnO(2)) nanosheets as the core structure, self-assembly chitosan (CHS), sodium alginate (SA) and nickel species (Ni) as surface layers, and it was further incorporated into an epoxy matrix for achieving fire hazard suppression via surface self-assembly technology. Herein, the resultant hybrid epoxy composite possessed an exceptional nano-barrier and synergistic charring effect to aid the formation of a compact layered structure that enhanced its fire-resistive effectiveness. As a result, the addition of only 2 wt% MnO(2)@CHS@SA@Ni hybrids led to a dramatic reduction in the peak heat release rate and total heat release values (by ca. 33% and 27.8%) of the epoxy matrix. Notably, the peak smoke production rate and total smoke production values of EP/MnO(2)@CHS@SA@Ni 2% were decreased by ca. 16.9 and 38.4% compared to the corresponding data of pristine EP. This was accompanied by the suppression of toxic CO, NO release and the diffusion of thermal pyrolysis gases during combustion through TG-IR results. Overall, a significant fire-testing outcome of the proposed hierarchical structure was proven to be effective for epoxy composites in terms of flammability, smoke and toxicity reductions, optimizing their prospects in other polymeric materials in the respective fields. MDPI 2022-11-08 /pmc/articles/PMC9697679/ /pubmed/36430185 http://dx.doi.org/10.3390/ijms232213711 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
Yuan, Yao
Liang, Chen
Yuen, Anthony Chun Yin
Xu, Lulu
Yu, Bin
Cao, Chengfei
Wang, Wei
Design of Hierarchically Tailored Hybrids Based on Nickle Nanocrystal-Decorated Manganese Dioxides for Enhanced Fire Safety of Epoxy Resin
title Design of Hierarchically Tailored Hybrids Based on Nickle Nanocrystal-Decorated Manganese Dioxides for Enhanced Fire Safety of Epoxy Resin
title_full Design of Hierarchically Tailored Hybrids Based on Nickle Nanocrystal-Decorated Manganese Dioxides for Enhanced Fire Safety of Epoxy Resin
title_fullStr Design of Hierarchically Tailored Hybrids Based on Nickle Nanocrystal-Decorated Manganese Dioxides for Enhanced Fire Safety of Epoxy Resin
title_full_unstemmed Design of Hierarchically Tailored Hybrids Based on Nickle Nanocrystal-Decorated Manganese Dioxides for Enhanced Fire Safety of Epoxy Resin
title_short Design of Hierarchically Tailored Hybrids Based on Nickle Nanocrystal-Decorated Manganese Dioxides for Enhanced Fire Safety of Epoxy Resin
title_sort design of hierarchically tailored hybrids based on nickle nanocrystal-decorated manganese dioxides for enhanced fire safety of epoxy resin
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9697679/
https://www.ncbi.nlm.nih.gov/pubmed/36430185
http://dx.doi.org/10.3390/ijms232213711
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