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An Acrylonitrile–Butadiene–Lignin Renewable Skin with Programmable and Switchable Electrical Conductivity for Stress/Strain-Sensing Applications

机译:一种丙烯腈 - 丁二烯 - 木质素可再生皮肤,具有可编程和可切换的电导率,用于应力/应变感应应用

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摘要

We report an approach for programming electrical conductivity of a bio-based leathery skin devised with a layer of 60 nm metallic nanoparticles. Lignin-based renewable shape-memory materials were made, for the first time, to program and restore the materials’ electrical conductivity after repeated deformation up to 100% strain amplitude, at a temperature 60–115 °C above the glass transition temperature ( T _(g)) of the rubbery matrix. We cross-linked lignin macromolecules with an acrylonitrile–butadiene rubbery melt in high quantities ranging from 40 to 60 wt % and processed the resulting thermoplastics into thin films. Chemical and physical networks within the polymeric materials significantly enhanced key characteristics such as mechanical stiffness, strain fixity, and temperature-stimulated recovery of shape. The branched structures of the guaiacylpropane-dominant softwood lignin significantly improve the rubber’s T _(g) and produced a film with stored and recoverable elastic work density that was an order of magnitude greater than those of the neat rubber and of samples made with syringylpropane-rich hardwood lignin. The devices could exhibit switching of conductivity before and after shape recovery.
机译:我们报告用于编程的电导率的方法基于生物的皮肤坚韧设计与60nm的金属纳米颗粒的层。木质素基再生形状记忆材料进行了改造,用于第一时间,程序和恢复材料电导率反复变形高达100%的应变振幅后,在温度60-115℃的高于玻璃化转变温度(T _(G))的橡胶状基体的。我们交联木质素大分子与丙烯腈 - 丁二烯橡胶的熔体在高数量的范围从40至60%(重量)和处理所得到的热塑性塑料成薄膜。化学和聚合物材料内的物理网络显著增强密钥特性,例如机械刚度,应变固定,和形状的温度刺激的恢复。所述guaiacylpropane显性软木的木质素显著的支化结构改进橡胶氏T _(g)和产生的膜与存储和可恢复弹性功密度是幅度更大的比纯橡胶和样品与syringylpropane-作出的命令丰富的硬木木质素。该设备可以前后形状恢复后表现出导电性的切换。

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  • 来源
    《Macromolecules》 |2018年第1期|共13页
  • 作者单位

    Carbon and Composites Group Materials Science and Technology Division Oak Ridge National Laboratory Oak Ridge Tennessee 37831-6053 United States;

    Carbon and Composites Group Materials Science and Technology Division Oak Ridge National Laboratory Oak Ridge Tennessee 37831-6053 United States;

    Carbon and Composites Group Materials Science and Technology Division Oak Ridge National Laboratory Oak Ridge Tennessee 37831-6053 United States;

    Carbon and Composites Group Materials Science and Technology Division Oak Ridge National Laboratory Oak Ridge Tennessee 37831-6053 United States;

    Carbon and Composites Group Materials Science and Technology Division Oak Ridge National Laboratory Oak Ridge Tennessee 37831-6053 United States;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 高分子化学(高聚物);
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