JOURNAL ARTICLE

Computational micromechanics analysis of electron-hopping-induced conductive paths and associated macroscale piezoresistive response in carbon nanotube–polymer nanocomposites

Adarsh K. ChaurasiaGary D. Seidel

Year: 2014 Journal:   Journal of Intelligent Material Systems and Structures Vol: 25 (17)Pages: 2141-2164   Publisher: SAGE Publishing

Abstract

In this study, a computational model is developed using finite-element techniques within a continuum micromechanics framework to capture the effect of electron-hopping-induced conductive paths at the nanoscale which contribute to the macroscale piezoresistive response of the nanocomposite. This is achieved by tracking the position of the nanotubes under applied deformations and modifying the conductivity of the intertube region depending on the relative proximity of individual pairs of nanotubes. The formation and disruption of the electron-hopping pathways are highly dependent on intertube distances and under deformations can result in microstructural rearrangements in terms of electrostatic properties leading to transitions in material symmetries and component magnitudes of the effective electrostatic properties. Thus, in order to capture the complexities of changing inhomogeneous nanoscale electrostatic behavior, where analytical Eshelby’s approaches cannot be used, a computational micromechanics model is needed. The effective conductivity and piezoresistive strain tensor coefficients are evaluated using volume-averaged energy equivalencies for aligned CNT–polymer nanocomposites in the transverse direction exploring different volume fractions of CNTs in the polymer and the maximum electron-hopping range. The impact of the electron-hopping mechanism on the effective piezoresistive response is studied through the macroscale effective gauge factors under different loading conditions. The effective piezoresistive strain coefficients and macroscale effective gauge factors are observed to be nonlinear with applied macroscale strain and are highly dependent on the type of boundary conditions. The effective macroscale gauge factors observed in the current study have magnitudes comparable to experimental observations reported in the literature with higher gauge factors observed closer to the percolation threshold.

Keywords:
Micromechanics Materials science Piezoresistive effect Carbon nanotube Nanocomposite Polymer nanocomposite Nanotube Composite material Conductivity Nanotechnology Physics

Metrics

48
Cited By
2.91
FWCI (Field Weighted Citation Impact)
73
Refs
0.92
Citation Normalized Percentile
Is in top 1%
Is in top 10%

Citation History

Topics

Carbon Nanotubes in Composites
Physical Sciences →  Materials Science →  Materials Chemistry
Mechanical and Optical Resonators
Physical Sciences →  Physics and Astronomy →  Atomic and Molecular Physics, and Optics
Nonlocal and gradient elasticity in micro/nano structures
Physical Sciences →  Materials Science →  Materials Chemistry

Related Documents

JOURNAL ARTICLE

Computational micromechanics analysis of electron hopping induced piezoresistive response in carbon nanotube-polymer nanocomposites

Adarsh K. ChaurasiaGary D. Seidel

Journal:   54th AIAA/ASME/ASCE/AHS/ASC Structures, Structural Dynamics, and Materials Conference Year: 2013
JOURNAL ARTICLE

Computational micromechanics modeling of piezoresistivity of carbon nanotube polymer nanocomposites

Xiang RenGary D. Seidel

Journal:   Proceedings of SPIE, the International Society for Optical Engineering/Proceedings of SPIE Year: 2012 Vol: 8342 Pages: 83421F-83421F
JOURNAL ARTICLE

Computational micromechanics modeling of piezoresistivity in carbon nanotube–polymer nanocomposites

Xiang RenGary D. Seidel

Journal:   Composite Interfaces Year: 2013 Vol: 20 (9)Pages: 693-720
© 2026 ScienceGate Book Chapters — All rights reserved.