Cargando…

A biopolymer-like metal enabled hybrid material with exceptional mechanical prowess

The design principles for naturally occurring biological materials have inspired us to develop next-generation engineering materials with remarkable performance. Nacre, commonly referred to as nature's armor, is renowned for its unusual combination of strength and toughness. Nature's wisdo...

Descripción completa

Detalles Bibliográficos
Autores principales: Zhang, Junsong, Cui, Lishan, Jiang, Daqiang, Liu, Yinong, Hao, Shijie, Ren, Yang, Han, Xiaodong, Liu, Zhenyang, Wang, Yunzhi, Yu, Cun, Huan, Yong, Zhao, Xinqing, Zheng, Yanjun, Xu, Huibin, Ren, Xiaobing, Li, Xiaodong
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Nature Publishing Group 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4322361/
https://www.ncbi.nlm.nih.gov/pubmed/25665501
http://dx.doi.org/10.1038/srep08357
_version_ 1782356368930373632
author Zhang, Junsong
Cui, Lishan
Jiang, Daqiang
Liu, Yinong
Hao, Shijie
Ren, Yang
Han, Xiaodong
Liu, Zhenyang
Wang, Yunzhi
Yu, Cun
Huan, Yong
Zhao, Xinqing
Zheng, Yanjun
Xu, Huibin
Ren, Xiaobing
Li, Xiaodong
author_facet Zhang, Junsong
Cui, Lishan
Jiang, Daqiang
Liu, Yinong
Hao, Shijie
Ren, Yang
Han, Xiaodong
Liu, Zhenyang
Wang, Yunzhi
Yu, Cun
Huan, Yong
Zhao, Xinqing
Zheng, Yanjun
Xu, Huibin
Ren, Xiaobing
Li, Xiaodong
author_sort Zhang, Junsong
collection PubMed
description The design principles for naturally occurring biological materials have inspired us to develop next-generation engineering materials with remarkable performance. Nacre, commonly referred to as nature's armor, is renowned for its unusual combination of strength and toughness. Nature's wisdom in nacre resides in its elaborate structural design and the judicious placement of a unique organic biopolymer with intelligent deformation features. However, up to now, it is still a challenge to transcribe the biopolymer's deformation attributes into a stronger substitute in the design of new materials. In this study, we propose a new design strategy that employs shape memory alloy to transcribe the “J-curve” mechanical response and uniform molecular/atomic level deformation of the organic biopolymer in the design of high-performance hybrid materials. This design strategy is verified in a TiNi-Ti(3)Sn model material system. The model material demonstrates an exceptional combination of mechanical properties that are superior to other high-performance metal-based lamellar composites known to date. Our design strategy creates new opportunities for the development of high-performance bio-inspired materials.
format Online
Article
Text
id pubmed-4322361
institution National Center for Biotechnology Information
language English
publishDate 2015
publisher Nature Publishing Group
record_format MEDLINE/PubMed
spelling pubmed-43223612015-02-20 A biopolymer-like metal enabled hybrid material with exceptional mechanical prowess Zhang, Junsong Cui, Lishan Jiang, Daqiang Liu, Yinong Hao, Shijie Ren, Yang Han, Xiaodong Liu, Zhenyang Wang, Yunzhi Yu, Cun Huan, Yong Zhao, Xinqing Zheng, Yanjun Xu, Huibin Ren, Xiaobing Li, Xiaodong Sci Rep Article The design principles for naturally occurring biological materials have inspired us to develop next-generation engineering materials with remarkable performance. Nacre, commonly referred to as nature's armor, is renowned for its unusual combination of strength and toughness. Nature's wisdom in nacre resides in its elaborate structural design and the judicious placement of a unique organic biopolymer with intelligent deformation features. However, up to now, it is still a challenge to transcribe the biopolymer's deformation attributes into a stronger substitute in the design of new materials. In this study, we propose a new design strategy that employs shape memory alloy to transcribe the “J-curve” mechanical response and uniform molecular/atomic level deformation of the organic biopolymer in the design of high-performance hybrid materials. This design strategy is verified in a TiNi-Ti(3)Sn model material system. The model material demonstrates an exceptional combination of mechanical properties that are superior to other high-performance metal-based lamellar composites known to date. Our design strategy creates new opportunities for the development of high-performance bio-inspired materials. Nature Publishing Group 2015-02-10 /pmc/articles/PMC4322361/ /pubmed/25665501 http://dx.doi.org/10.1038/srep08357 Text en Copyright © 2015, Macmillan Publishers Limited. All rights reserved http://creativecommons.org/licenses/by-nc-nd/4.0/ This work is licensed under a Creative Commons Attribution-NonCommercial-NoDerivs 4.0 International License. The images or other third party material in this article are included in the article's Creative Commons license, unless indicated otherwise in the credit line; if the material is not included under the Creative Commons license, users will need to obtain permission from the license holder in order to reproduce the material. To view a copy of this license, visit http://creativecommons.org/licenses/by-nc-nd/4.0/
spellingShingle Article
Zhang, Junsong
Cui, Lishan
Jiang, Daqiang
Liu, Yinong
Hao, Shijie
Ren, Yang
Han, Xiaodong
Liu, Zhenyang
Wang, Yunzhi
Yu, Cun
Huan, Yong
Zhao, Xinqing
Zheng, Yanjun
Xu, Huibin
Ren, Xiaobing
Li, Xiaodong
A biopolymer-like metal enabled hybrid material with exceptional mechanical prowess
title A biopolymer-like metal enabled hybrid material with exceptional mechanical prowess
title_full A biopolymer-like metal enabled hybrid material with exceptional mechanical prowess
title_fullStr A biopolymer-like metal enabled hybrid material with exceptional mechanical prowess
title_full_unstemmed A biopolymer-like metal enabled hybrid material with exceptional mechanical prowess
title_short A biopolymer-like metal enabled hybrid material with exceptional mechanical prowess
title_sort biopolymer-like metal enabled hybrid material with exceptional mechanical prowess
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4322361/
https://www.ncbi.nlm.nih.gov/pubmed/25665501
http://dx.doi.org/10.1038/srep08357
work_keys_str_mv AT zhangjunsong abiopolymerlikemetalenabledhybridmaterialwithexceptionalmechanicalprowess
AT cuilishan abiopolymerlikemetalenabledhybridmaterialwithexceptionalmechanicalprowess
AT jiangdaqiang abiopolymerlikemetalenabledhybridmaterialwithexceptionalmechanicalprowess
AT liuyinong abiopolymerlikemetalenabledhybridmaterialwithexceptionalmechanicalprowess
AT haoshijie abiopolymerlikemetalenabledhybridmaterialwithexceptionalmechanicalprowess
AT renyang abiopolymerlikemetalenabledhybridmaterialwithexceptionalmechanicalprowess
AT hanxiaodong abiopolymerlikemetalenabledhybridmaterialwithexceptionalmechanicalprowess
AT liuzhenyang abiopolymerlikemetalenabledhybridmaterialwithexceptionalmechanicalprowess
AT wangyunzhi abiopolymerlikemetalenabledhybridmaterialwithexceptionalmechanicalprowess
AT yucun abiopolymerlikemetalenabledhybridmaterialwithexceptionalmechanicalprowess
AT huanyong abiopolymerlikemetalenabledhybridmaterialwithexceptionalmechanicalprowess
AT zhaoxinqing abiopolymerlikemetalenabledhybridmaterialwithexceptionalmechanicalprowess
AT zhengyanjun abiopolymerlikemetalenabledhybridmaterialwithexceptionalmechanicalprowess
AT xuhuibin abiopolymerlikemetalenabledhybridmaterialwithexceptionalmechanicalprowess
AT renxiaobing abiopolymerlikemetalenabledhybridmaterialwithexceptionalmechanicalprowess
AT lixiaodong abiopolymerlikemetalenabledhybridmaterialwithexceptionalmechanicalprowess
AT zhangjunsong biopolymerlikemetalenabledhybridmaterialwithexceptionalmechanicalprowess
AT cuilishan biopolymerlikemetalenabledhybridmaterialwithexceptionalmechanicalprowess
AT jiangdaqiang biopolymerlikemetalenabledhybridmaterialwithexceptionalmechanicalprowess
AT liuyinong biopolymerlikemetalenabledhybridmaterialwithexceptionalmechanicalprowess
AT haoshijie biopolymerlikemetalenabledhybridmaterialwithexceptionalmechanicalprowess
AT renyang biopolymerlikemetalenabledhybridmaterialwithexceptionalmechanicalprowess
AT hanxiaodong biopolymerlikemetalenabledhybridmaterialwithexceptionalmechanicalprowess
AT liuzhenyang biopolymerlikemetalenabledhybridmaterialwithexceptionalmechanicalprowess
AT wangyunzhi biopolymerlikemetalenabledhybridmaterialwithexceptionalmechanicalprowess
AT yucun biopolymerlikemetalenabledhybridmaterialwithexceptionalmechanicalprowess
AT huanyong biopolymerlikemetalenabledhybridmaterialwithexceptionalmechanicalprowess
AT zhaoxinqing biopolymerlikemetalenabledhybridmaterialwithexceptionalmechanicalprowess
AT zhengyanjun biopolymerlikemetalenabledhybridmaterialwithexceptionalmechanicalprowess
AT xuhuibin biopolymerlikemetalenabledhybridmaterialwithexceptionalmechanicalprowess
AT renxiaobing biopolymerlikemetalenabledhybridmaterialwithexceptionalmechanicalprowess
AT lixiaodong biopolymerlikemetalenabledhybridmaterialwithexceptionalmechanicalprowess