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Preparation of High-Performance Conductive Polymer Fibers through Morphological Control of Networks Formed by Nanofillers

机译:通过纳米填料形成网络的形态控制制备高性能导电聚合物纤维

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摘要

A general method is described to prepare high-performance conductive polymer fibers or tapes. In this method, bicomponent tapes/fibers containing two layers of conductive polymer composites (CPCs) filled with multiwall carbon nanotubes (MWNT) or carbon black (CB) based on a lower-melting-temperature polymer and an unfilled polymer core with higher melting temperature are fabricated by a melt-based process. Morphological control of the conductive network formed by nanofillers is realized by solid-state drawing and annealing. Information on the morphological and electrical change of the highly oriented conductive nanofiller network in CPC bicomponent tapes during relaxation, melting, and crystallization of the polymer matrix is reported for the first time. The conductivity of these polypropylene tapes can be as high as 275 S m~(-1) with tensile strengths of around 500 MPa. To the best of the authors' knowledge, it is the most conductive, high-strength polymer fiber produced by melt-processing reported in literature, despite the fact that only ~5 wt.% of MWNTs are used in the outer layers of the tape and the overall MWNT content in the bicomponent tape can be much lower (typically ~0.5 wt.%). Their applications could include sensing, smart textiles, electrodes for flexible solar cells, and electromagnetic interference (EMI) shielding. Furthermore, a modeling approach was used to study the relaxation process of highly oriented conductive networks formed by carbon nanofillers.
机译:描述了制备高性能导电聚合物纤维或带的通用方法。在这种方法中,双组分胶带/纤维包含两层导电聚合物复合材料(CPC),其中填充了多壁碳纳米管(MWNT)或基于较低熔点聚合物的炭黑(CB)和具有较高熔融温度的未填充聚合物核通过基于熔融的工艺制造。由纳米填料形成的导电网络的形态控制是通过固态拉伸和退火实现的。首次报道了在聚合物基质的松弛,熔融和结晶过程中,CPC双组分带中高度定向的导电纳米填料网络的形态和电学变化的信息。这些聚丙烯带的电导率可高达275 S m〜(-1),抗拉强度约为500 MPa。据作者所知,它是文献中报道的通过熔融加工生产的最具导电性,高强度的聚合物纤维,尽管在胶带的外层仅使用了约5 wt。%的MWNT。双组分胶带中的总MWNT含量要低得多(通常约为0.5 wt。%)。它们的应用可能包括传感,智能纺织品,用于柔性太阳能电池的电极以及电磁干扰(EMI)屏蔽。此外,使用一种建模方法来研究由碳纳米填料形成的高度定向的导电网络的弛豫过程。

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  • 来源
    《Advanced Functional Materials 》 |2010年第9期| P.1424-1432| 共9页
  • 作者单位

    College of Polymer Science and Engineering State Key Laboratory of Polymer Materials Engineering Sichuan University Chengdu, 610065 Sichuan (China) rnSchool of Engineering and Materials Science Centre for Materials Research Queen Mary University of London Mile End Road, E1 4NS London (UK);

    rnDeutsches Kunststoff-Institut (DKI) Schlossgartenstrasse 6, D-64289 Darmstadt (Germany);

    rnSchool of Engineering and Materials Science Centre for Materials Research Queen Mary University of London Mile End Road, E1 4NS London (UK);

    rnSchool of Engineering and Materials Science Centre for Materials Research Queen Mary University of London Mile End Road, E1 4NS London (UK);

    rnDeutsches Kunststoff-Institut (DKI) Schlossgartenstrasse 6, D-64289 Darmstadt (Germany);

    rnNanocyl S.A. Rue de l'Essor, 4, B-5060 Sambreville (Belgium);

    rnCollege of Polymer Science and Engineering State Key Laboratory of Polymer Materials Engineering Sichuan University Chengdu, 610065 Sichuan (China);

    rnDeutsches Kunststoff-Institut (DKI) Schlossgartenstrasse 6, D-64289 Darmstadt (Germany);

    rnSchool of Engineering and Materials Science Centre for Materials Research Queen Mary University of London Mile End Road, E1 4NS London (UK) rnEindhoven University of Technology Eindhoven Polymer Laboratories 5600 MB Eindhoven (The Netherlands);

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