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3D Printing of Nacre-Inspired Structures with Exceptional Mechanical and Flame-Retardant Properties

Flame-retardant and thermal management structures have attracted great attention due to the requirement of high-temperature exposure in industrial, aerospace, and thermal power fields, but the development of protective fire-retardant structures with complex shapes to fit arbitrary surfaces is still...

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Detalles Bibliográficos
Autores principales: Yang, Yang, Wang, Ziyu, He, Qingqing, Li, Xiangjia, Lu, Gengxi, Jiang, Laiming, Zeng, Yushun, Bethers, Brandon, Jin, Jie, Lin, Shuang, Xiao, Siqi, Zhu, Yizhen, Wu, Xianke, Xu, Wenwu, Wang, Qiming, Chen, Yong
Formato: Online Artículo Texto
Lenguaje:English
Publicado: AAAS 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8817185/
https://www.ncbi.nlm.nih.gov/pubmed/35169712
http://dx.doi.org/10.34133/2022/9840574
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author Yang, Yang
Wang, Ziyu
He, Qingqing
Li, Xiangjia
Lu, Gengxi
Jiang, Laiming
Zeng, Yushun
Bethers, Brandon
Jin, Jie
Lin, Shuang
Xiao, Siqi
Zhu, Yizhen
Wu, Xianke
Xu, Wenwu
Wang, Qiming
Chen, Yong
author_facet Yang, Yang
Wang, Ziyu
He, Qingqing
Li, Xiangjia
Lu, Gengxi
Jiang, Laiming
Zeng, Yushun
Bethers, Brandon
Jin, Jie
Lin, Shuang
Xiao, Siqi
Zhu, Yizhen
Wu, Xianke
Xu, Wenwu
Wang, Qiming
Chen, Yong
author_sort Yang, Yang
collection PubMed
description Flame-retardant and thermal management structures have attracted great attention due to the requirement of high-temperature exposure in industrial, aerospace, and thermal power fields, but the development of protective fire-retardant structures with complex shapes to fit arbitrary surfaces is still challenging. Herein, we reported a rotation-blade casting-assisted 3D printing process to fabricate nacre-inspired structures with exceptional mechanical and flame-retardant properties, and the related fundamental mechanisms are studied. 3-(Trimethoxysilyl)propyl methacrylate (TMSPMA) modified boron nitride nanoplatelets (BNs) were aligned by rotation-blade casting during the 3D printing process to build the “brick and mortar” architecture. The 3D printed structures are more lightweight, while having higher fracture toughness than the natural nacre, which is attributed to the crack deflection, aligned BN (a-BNs) bridging, and pull-outs reinforced structures by the covalent bonding between TMSPMA grafted a-BNs and polymer matrix. Thermal conductivity is enhanced by 25.5 times compared with pure polymer and 5.8 times of anisotropy due to the interconnection of a-BNs. 3D printed heat-exchange structures with vertically aligned BNs in complex shapes were demonstrated for efficient thermal control of high-power light-emitting diodes. 3D printed helmet and armor with a-BNs show exceptional mechanical and fire-retardant properties, demonstrating integrated mechanical and thermal protection.
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spelling pubmed-88171852022-02-14 3D Printing of Nacre-Inspired Structures with Exceptional Mechanical and Flame-Retardant Properties Yang, Yang Wang, Ziyu He, Qingqing Li, Xiangjia Lu, Gengxi Jiang, Laiming Zeng, Yushun Bethers, Brandon Jin, Jie Lin, Shuang Xiao, Siqi Zhu, Yizhen Wu, Xianke Xu, Wenwu Wang, Qiming Chen, Yong Research (Wash D C) Research Article Flame-retardant and thermal management structures have attracted great attention due to the requirement of high-temperature exposure in industrial, aerospace, and thermal power fields, but the development of protective fire-retardant structures with complex shapes to fit arbitrary surfaces is still challenging. Herein, we reported a rotation-blade casting-assisted 3D printing process to fabricate nacre-inspired structures with exceptional mechanical and flame-retardant properties, and the related fundamental mechanisms are studied. 3-(Trimethoxysilyl)propyl methacrylate (TMSPMA) modified boron nitride nanoplatelets (BNs) were aligned by rotation-blade casting during the 3D printing process to build the “brick and mortar” architecture. The 3D printed structures are more lightweight, while having higher fracture toughness than the natural nacre, which is attributed to the crack deflection, aligned BN (a-BNs) bridging, and pull-outs reinforced structures by the covalent bonding between TMSPMA grafted a-BNs and polymer matrix. Thermal conductivity is enhanced by 25.5 times compared with pure polymer and 5.8 times of anisotropy due to the interconnection of a-BNs. 3D printed heat-exchange structures with vertically aligned BNs in complex shapes were demonstrated for efficient thermal control of high-power light-emitting diodes. 3D printed helmet and armor with a-BNs show exceptional mechanical and fire-retardant properties, demonstrating integrated mechanical and thermal protection. AAAS 2022-01-27 /pmc/articles/PMC8817185/ /pubmed/35169712 http://dx.doi.org/10.34133/2022/9840574 Text en Copyright © 2022 Yang Yang et al. https://creativecommons.org/licenses/by/4.0/Exclusive Licensee Science and Technology Review Publishing House. Distributed under a Creative Commons Attribution License (CC BY 4.0).
spellingShingle Research Article
Yang, Yang
Wang, Ziyu
He, Qingqing
Li, Xiangjia
Lu, Gengxi
Jiang, Laiming
Zeng, Yushun
Bethers, Brandon
Jin, Jie
Lin, Shuang
Xiao, Siqi
Zhu, Yizhen
Wu, Xianke
Xu, Wenwu
Wang, Qiming
Chen, Yong
3D Printing of Nacre-Inspired Structures with Exceptional Mechanical and Flame-Retardant Properties
title 3D Printing of Nacre-Inspired Structures with Exceptional Mechanical and Flame-Retardant Properties
title_full 3D Printing of Nacre-Inspired Structures with Exceptional Mechanical and Flame-Retardant Properties
title_fullStr 3D Printing of Nacre-Inspired Structures with Exceptional Mechanical and Flame-Retardant Properties
title_full_unstemmed 3D Printing of Nacre-Inspired Structures with Exceptional Mechanical and Flame-Retardant Properties
title_short 3D Printing of Nacre-Inspired Structures with Exceptional Mechanical and Flame-Retardant Properties
title_sort 3d printing of nacre-inspired structures with exceptional mechanical and flame-retardant properties
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8817185/
https://www.ncbi.nlm.nih.gov/pubmed/35169712
http://dx.doi.org/10.34133/2022/9840574
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