Biomimetic Carbon Nanotube Films with Gradient Structure and Locally Tunable Mechanical Property

IF 5.1 Q1 POLYMER SCIENCE ACS Macro Letters Pub Date : 2015-10-31 DOI:10.1002/adfm.201503341
Zhiqiang Lin, Xuchun Gui, Zhiping Zeng, Binghao Liang, Wenjun Chen, Ming Liu, Yuan Zhu, Anyuan Cao, Zikang Tang
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引用次数: 17

Abstract

Naturally existing materials often acquire unique functions by adopting a gradient structure with gradual change in their microstructure and related properties. Imparting such an elegant structural control into synthetic materials has been a grand challenge in the field. Here, the concept of gradient structure into macroscopic carbon nanotube (CNT) films is employed and the CNT arrangement from well-aligned array to completely random distribution, in a continuous and smooth way, is changed. Gradient films with tailored aligned-to-random transition rate or multilevel hierarchical structures with repeated transition have been fabricated. Local deformation and mechanical properties are directly related to the arrangement of CNTs and can be tailored by Herman's orientation factor; in particular, the elastic modulus and stiffness span over several orders of magnitude from aligned to random regions within a single monolithic film. Controlled synthesis of macroscopic CNT gradient structures with tunable mechanical properties opens a potential route toward manufacturing biomimetic functional materials with locally optimized design.

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具有梯度结构和局部可调力学性能的仿生碳纳米管薄膜
自然存在的材料往往采用梯度结构,其微观结构和相关性能逐渐变化,从而获得独特的功能。在该领域,将如此优雅的结构控制引入合成材料一直是一个巨大的挑战。本文将梯度结构的概念引入到宏观碳纳米管(CNT)薄膜中,使碳纳米管的排列从整齐排列变为完全随机分布,并以连续平滑的方式进行。已经制备了具有定制的排列到随机过渡率的梯度薄膜或具有重复过渡的多层分层结构。局部变形和力学性能与CNTs的排列直接相关,并可通过Herman取向因子进行调整;特别是,弹性模量和刚度跨度超过几个数量级,从排列到随机区域在一个单一的单片薄膜。具有可调力学性能的宏观碳纳米管梯度结构的受控合成为制造具有局部优化设计的仿生功能材料开辟了一条潜在的途径。
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来源期刊
CiteScore
10.40
自引率
3.40%
发文量
209
审稿时长
1 months
期刊介绍: ACS Macro Letters publishes research in all areas of contemporary soft matter science in which macromolecules play a key role, including nanotechnology, self-assembly, supramolecular chemistry, biomaterials, energy generation and storage, and renewable/sustainable materials. Submissions to ACS Macro Letters should justify clearly the rapid disclosure of the key elements of the study. The scope of the journal includes high-impact research of broad interest in all areas of polymer science and engineering, including cross-disciplinary research that interfaces with polymer science. With the launch of ACS Macro Letters, all Communications that were formerly published in Macromolecules and Biomacromolecules will be published as Letters in ACS Macro Letters.
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