Simulated electrical response of randomly distributed and aligned graphene/polymer nanocomposites

被引:13
作者
Manta, Asimina [1 ]
Gresil, Matthieu [1 ,2 ]
Soutis, Constantinos [2 ]
机构
[1] Univ Manchester, Sch Mat, I Composites Lab, James Lighthill Bldg,Sackville St, Manchester M13 9PL, Lancs, England
[2] Univ Manchester, Fac Engn & Phys Sci, Aerosp Res Inst, James Lighthill Bldg,Sackville St, Manchester M13 9PL, Lancs, England
关键词
Nano-structures; Polymer; Graphene; Percolation threshold; Finite element analysis (FEA); Computational modelling; Electrical properties; Electrical conductivity; PERCOLATION PROPERTIES; MECHANICAL-PROPERTIES; DIELECTRIC-PROPERTIES; THERMAL-CONDUCTIVITY; POLYMER COMPOSITES; GRAPHITE; NANOSHEETS; THRESHOLD; BEHAVIOR; FILM;
D O I
10.1016/j.compstruct.2018.03.022
中图分类号
O3 [力学];
学科分类号
08 ; 0801 ;
摘要
In this work, a recently developed numerical method that simulates the electrical response of a graphene/polymer nanocomposite is validated with experimental data. The approach is based on the multiscale method and consists of a unit cell and a representative volume element (RVE), accounting for aligned and randomly distributed nanoparticles. At the unit cell level, the material nano characteristics (filler geometry, constituent electrical and interfacial properties) are integrated into a local resistance algebraic matrix. The material architecture is then modelled at the micro-level (RVE) by a user-defined distribution of the unit cell electrical properties. A statistical sample was studied and the average electrical response was compared with measurements for direct (DC) and alternate current (AC). The proposed methodology accurately describes the nanocomposite electrical behaviour with its volume fraction and loading frequency. The model is proven to be an effective, flexible and time-efficient tool to design and optimize advanced nanocomposite systems.
引用
收藏
页码:452 / 459
页数:8
相关论文
共 44 条
[1]   Electrical and mechanical properties of graphene/carbon nanotube hybrid nanocomposites [J].
Al-Saleh, Mohammed H. .
SYNTHETIC METALS, 2015, 209 :41-46
[2]   Solution of the tunneling-percolation problem in the nanocomposite regime [J].
Ambrosetti, G. ;
Grimaldi, C. ;
Balberg, I. ;
Maeder, T. ;
Danani, A. ;
Ryser, P. .
PHYSICAL REVIEW B, 2010, 81 (15)
[3]  
Ambrosetti G, 2008, PHYS REV E, P78
[4]  
[Anonymous], 2014, J NANOMATER, DOI DOI 10.1016/J.CARB0N.2014.01.066
[5]   PMMA/graphite nanosheets composite and its conducting properties [J].
Chen, GH ;
Weng, WG ;
Wu, DJ ;
Wu, CL .
EUROPEAN POLYMER JOURNAL, 2003, 39 (12) :2329-2335
[6]   Thermal transport behaviors of suspended graphene sheets with different sizes [J].
Chen, Lifei ;
Xie, Huaqing ;
Yu, Wei ;
Wang, Bingqian ;
Wu, Zihua .
INTERNATIONAL JOURNAL OF THERMAL SCIENCES, 2015, 94 :221-227
[7]   Intercalation of CuCl2 into expanded graphite [J].
Chuan, X ;
Chen, D ;
Zhou, X .
CARBON, 1997, 35 (02) :311-313
[8]   Temperature- and thickness-dependent electrical conductivity of few-layer graphene and graphene nanosheets [J].
Fang, Xiao-Yong ;
Yu, Xiao-Xia ;
Zheng, Hong-Mei ;
Jin, Hai-Bo ;
Wang, Li ;
Cao, Mao-Sheng .
PHYSICS LETTERS A, 2015, 379 (37) :2245-2251
[9]   New nanocomposite materials made of an insulating matrix and conducting fillers:: Processing and properties [J].
Flandin, L ;
Bidan, G ;
Brechet, Y ;
Cavaillé, JY .
POLYMER COMPOSITES, 2000, 21 (02) :165-174
[10]  
Fukuda K, 1997, J POWER SOURCES, V69, P165, DOI 10.1016/S0378-7753(97)02568-8