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Extensional flow-induced conductive nanohybrid shish in poly(lactic acid) nanocomposites toward pioneering combination of high electrical conductivity, strength, and ductility

机译:在聚(乳酸)纳米复合材料中的延伸流动纳米壳含有高导电性,强度和延展性的促进组合

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摘要

Balanced electrical conductivity and mechanical properties are always of great significance for the practical applications of conductive polymer composites (CPCs), especially for the inherent brittle poly (lactic acid) (PLA)-based CPCs. Herein, the phase control methodology (i.e. carbon nanotubes (CNTs) and intense extensional flow field synergistically induced PLA crystallization) was proposed to achieve the in situ electrically conductive nanohybrid shish that is composed of plenty of CNTs coated by PLA crystalline phase. In addition, the conductive networks were easily constructed by the combined effect of 1 D wire-like conductive nanohybrid shish and 2 D patch board-like graphene (GE) for highly conductive PLA/CNT/GE nanocomposites. Compared with common pure PLA (4.2 x 10(-12) S/cm), the electrical conductivity of PLA/CNT5/GE0.1 (1.32 S/cm) was sharply increased by 12 orders of magnitude. Meanwhile, due to the strong reinforcing effects of nanohybrid shish, PLA/CNT5/ GE0.1 exhibited unexpectedly simultaneous enhancement in ductility, strength, and stiffness, outperforming common pure PLA with increase of 1952%, 40.6%, and 24.1%, respectively. Of particular interest was the conductive nanohybrid shish fabricated with industrial feasibility, displaying the competitive advantages in achieving high-conductivity and high-performance PLA, even for other semicrystalline polymers. The unprecedented combination of high electrical conductivity, ductility, strength, and stiffness established in PLA-based nanocomposites only by tailoring the crystalline microstructures is in great potential need for electromagnetic shielding, electronic devices, and antistatic packaging applications.
机译:对于导电聚合物复合材料(CPC)的实际应用,平衡导电性和机械性能始终具有重要意义,特别是对于基于CPC的固有脆性聚(乳酸)(PLA)。在此,提出了相对控制方法(即碳纳米管(CNT)和强烈的延伸流场协同诱导的PLA结晶),以实现原位导电纳米壳丝网,其由PLA结晶相涂覆的大量CNT组成。此外,通过1d线状导电纳米壳膜和2d膜板状石墨烯(Ge)的组合效果容易构成导电网络,用于高导电PLA / CNT / Ge纳米复合材料。与普通纯PLA(4.2×10(-12)S / cm)相比,PLA / CNT5 / GE0.1(1.32S / cm)的电导率急剧增加12级数量级。同时,由于纳米冬甲什的强化效果,PLA / CNT5 / GE0.1的延展性,强度和刚度呈现出意外同时增强,优于普遍纯PLA,分别增加了1952%,40.6%和24.1%。特别令人兴趣的是具有工业可行性的导电纳米羊氏膜,甚至可以用于实现高导电性和高性能PLA的竞争优势,即使是其他半结晶聚合物。仅通过定制晶体微结构的PLA基纳米复合材料中建立的高导电性,延展性,强度和刚度的前所未有的组合,对于电磁屏蔽,电子器件和抗静电包装应用,才能极大地潜在需要。

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  • 来源
    《Composites》 |2020年第15期|108467.1-108467.9|共9页
  • 作者单位

    Guizhou Univ Coll Mat & Met Dept Polymer Mat & Engn Guiyang 550025 Peoples R China|Natl Engn Res Ctr Compounding & Modificat Polymer Guiyang 550014 Peoples R China|Natl & Local Joint Engn Res Ctr Funct Polymer Mem Guiyang 550014 Peoples R China;

    Guizhou Univ Coll Mat & Met Dept Polymer Mat & Engn Guiyang 550025 Peoples R China;

    Guizhou Univ Coll Mat & Met Dept Polymer Mat & Engn Guiyang 550025 Peoples R China;

    Guizhou Univ Coll Mat & Met Dept Polymer Mat & Engn Guiyang 550025 Peoples R China;

    Guizhou Univ Coll Mat & Met Dept Polymer Mat & Engn Guiyang 550025 Peoples R China|Natl Engn Res Ctr Compounding & Modificat Polymer Guiyang 550014 Peoples R China|Natl & Local Joint Engn Res Ctr Funct Polymer Mem Guiyang 550014 Peoples R China;

    Zhejiang Univ Coll Polymer Sci & Engn Hangzhou 310000 Peoples R China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Nanohybrid shish; Extensional flow field; Carbon nanotubes; Electrical conductivity; Mechanical properties;

    机译:纳米露出烤;膨胀流场;碳纳米管;电导率;机械性能;

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