Analytical modeling of the electrical conductivity of CNT-filled polymer nanocomposites

被引:0
|
作者
Ahmadi, Masoud [1 ]
Saxena, Prashant [1 ,2 ]
机构
[1] Univ Glasgow, Glasgow Computat Engn Ctr, James Watt Sch Engn, Glasgow City, Scotland
[2] Univ Glasgow, Glasgow Computat Engn Ctr, James Watt Sch Engn, Glasgow City G128LT, Scotland
基金
英国工程与自然科学研究理事会;
关键词
Electrical conductivity; polymer nanocomposites; carbon nanotubes; equivalent inclusion method; CNT-filled polymer; NANOTUBE-REINFORCED COMPOSITES; EFFECTIVE THERMAL-CONDUCTIVITY; CARBON NANOTUBES; HALPIN-TSAI; MICROMECHANICAL ANALYSIS; FIBER; MIXTURE; MATRIX; RULE; MICROHARDNESS;
D O I
10.1177/10812865231225483
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Electrical conductivity of most polymeric insulators can be drastically enhanced by introducing a small volume fraction (similar to 1 %) of conductive nanofillers. These nanocomposites find wide-ranging engineering applications from cellular metamaterials to strain sensors. In this work, we present a mathematical model to predict the effective electrical conductivity of carbon nanotubes (CNTs)/polymer nanocomposites accounting for the conductivity, dimensions, volume fraction, and alignment of the CNTs. Eshelby's classical equivalent inclusion method (EIM) is generalized to account for electron-hopping-a key mechanism of electron transport across CNTs, and is validated with experimental data. Two measurements, namely, the limit angle of filler orientation and the probability distribution function, are used to control the alignment of CNTs within the composites. Our simulations show that decreasing the angle from a uniformly random distribution to a fully aligned state significantly reduces the transverse electrical conductivity, while the longitudinal conductivity shows less sensitivity to angle variation. Moreover, it is observed that distributing CNTs with non-uniform probability distribution functions results in an increase in longitudinal conductivity and a decrease in transverse conductivity, with these differences becoming more pronounced as the volume fraction of CNTs is increased. A reduction in CNT length decreases the effective electrical conductivity due to the reduced number of available conductive pathways while reducing CNT diameter increases the conductivity.
引用
收藏
页码:428 / 449
页数:22
相关论文
共 50 条
  • [21] CNTs - a Comparable Study of CNT-filled Adhesives with Common Materials
    Heimann, Matthias
    Boehme, Bjoern
    Scheffler, Sebastian
    Wirts-Ruetters, Martin
    Wolter, Klaus-Juergen
    2009 IEEE 59TH ELECTRONIC COMPONENTS AND TECHNOLOGY CONFERENCE, VOLS 1-4, 2009, : 1871 - +
  • [22] The effective conductivity of polymer carbon nanotubes (CNT) nanocomposites
    Zare, Yasser
    Rhee, Kyong Yop
    JOURNAL OF PHYSICS AND CHEMISTRY OF SOLIDS, 2019, 131 : 15 - 21
  • [23] Numerical simulations of residual stress and inhomogeneous conductivity effects in CNT-filled resins cured by electric field
    Matsuzaki, R.
    Hatori, S.
    EXPRESS POLYMER LETTERS, 2016, 10 (01): : 15 - 24
  • [24] Analysis of the roles of interphase, waviness and agglomeration of CNT in the electrical conductivity and tensile modulus of polymer/CNT nanocomposites by theoretical approaches
    Zhu, Jia-Ming
    Zare, Yasser
    Rhee, Kyong Yop
    COLLOIDS AND SURFACES A-PHYSICOCHEMICAL AND ENGINEERING ASPECTS, 2018, 539 : 29 - 36
  • [25] Thermal conductivity of highly filled polymer nanocomposites
    Drozdov, A. D.
    Christiansen, J. deClaville
    COMPOSITES SCIENCE AND TECHNOLOGY, 2019, 182
  • [26] Multiscale modeling of electrical conductivity of carbon nanotubes based polymer nanocomposites
    Khromov, K. Yu.
    Knizhnik, A. A.
    Potapkin, B. V.
    Kenny, J. M.
    JOURNAL OF APPLIED PHYSICS, 2017, 121 (22)
  • [27] Dual percolations of electrical conductivity and electromagnetic interference shielding in progressively agglomerated CNT/polymer nanocomposites
    Xia, Xiaodong
    Weng, George J.
    MATHEMATICS AND MECHANICS OF SOLIDS, 2021, 26 (08) : 1120 - 1137
  • [28] Electrical conductivity of CNT/polymer composites: 3D printing, measurements and modeling
    Mora, A.
    Verma, P.
    Kumar, S.
    COMPOSITES PART B-ENGINEERING, 2020, 183 (183)
  • [29] Modeling the effect of interfacial conductivity between polymer matrix and carbon nanotubes on the electrical conductivity of nanocomposites
    Zare, Yasser
    Rhee, Kyong Yop
    RSC ADVANCES, 2020, 10 (01) : 424 - 433
  • [30] Electrical conductivity of polymer composites filled with metal
    Horibe, H
    Kamimura, T
    Yoshida, K
    JAPANESE JOURNAL OF APPLIED PHYSICS PART 1-REGULAR PAPERS BRIEF COMMUNICATIONS & REVIEW PAPERS, 2005, 44 (6A): : 4171 - 4175