Elliptic percolation model for predicting the electrical conductivity of graphene-polymer composites

被引:12
作者
Aryanfar, Asghar [1 ,2 ]
Medlej, Sajed [1 ]
Tarhini, Ali [1 ]
Tehrani B, Ali R. [1 ,3 ]
机构
[1] Amer Univ Beirut, Riad El Solh 1107, Lebanon
[2] Bahcesehir Univ, 4 Ciragan Cad, TR-34353 Istanbul, Turkey
[3] Aalto Univ, Chem Engn, Espoo 02150, Finland
关键词
CONTINUUM PERCOLATION; THERMAL-CONDUCTIVITY; THRESHOLD; SYSTEMS; TORTUOSITY; SIMULATION; REDUCTION; EQUATION; NETWORK;
D O I
10.1039/d0sm01950j
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Graphene-based polymers exhibit a conductive microstructure formed by aggregates in a matrix which drastically enhances their transmitting properties. We develop a new numerical framework for predicting the electrical conductivity based on continuum percolation theory in a two dimensional stochastically-generated medium. We analyze the role of the flake shape and its aspect ratio and consequently predict the onset of percolation based on the particle density and the domain scale. Simultaneously, we have performed experiments and have achieved very high electrical conductivity for such composites compared to other film fabrication techniques, which have verified the results of computing the homogenized electrical conductivity. As well, the proximity to and a comparison with other analytical models and other experimental techniques are presented. The numerical model can predict the composite transmitting conductivity in a larger range of particle geometry. Such quantification is exceedingly useful for effective utilization and optimization of graphene filler densities and their spatial distribution during manufacturing.
引用
收藏
页码:2081 / 2089
页数:9
相关论文
共 61 条
[1]  
Aharony A., 2003, Introduction to Percolation Theory
[2]   Destruction and formation of a conductive carbon nanotube network in polymer melts:: In-line experiments [J].
Alig, Ingo ;
Lellinger, Dirk ;
Engel, Martin ;
Skipa, Tetyana ;
Poetschke, Petra .
POLYMER, 2008, 49 (07) :1902-1909
[3]   The percolation threshold in systems of permeable ellipses [J].
Ambrozic, M. .
EUROPEAN PHYSICAL JOURNAL-APPLIED PHYSICS, 2008, 41 (02) :121-127
[4]   Enhanced thermal conductivity for poly(vinylidene fluoride) composites with nano-carbon fillers [J].
Cao, Yong ;
Liang, Minjie ;
Liu, Zhiduo ;
Wu, Yuming ;
Xiong, Xiaoli ;
Li, Chaoyang ;
Wang, Xingming ;
Jiang, Nan ;
Yu, Jinhong ;
Lin, Cheng-Te .
RSC ADVANCES, 2016, 6 (72) :68357-68362
[5]   Non-universal conductivity critical exponents in anisotropic percolating media:: a new interpretation [J].
Celzard, A ;
Marêché, JF .
PHYSICA A-STATISTICAL MECHANICS AND ITS APPLICATIONS, 2003, 317 (3-4) :305-312
[6]   Inferring anatomical therapeutic chemical (ATC) class of drugs using shortest path and random walk with restart algorithms [J].
Chen, Lei ;
Liu, Tao ;
Zhao, Xian .
BIOCHIMICA ET BIOPHYSICA ACTA-MOLECULAR BASIS OF DISEASE, 2018, 1864 (06) :2228-2240
[7]   Diffusion on grain boundary networks: Percolation theory and effective medium approximations [J].
Chen, Ying ;
Schuh, Christopher A. .
ACTA MATERIALIA, 2006, 54 (18) :4709-4720
[8]   Otsu's Thresholding Method Based on Gray Level-Gradient Two-Dimensional Histogram [J].
Chen Yu ;
Chen Dian-ren ;
Li Yang ;
Chen Lei .
2010 2ND INTERNATIONAL ASIA CONFERENCE ON INFORMATICS IN CONTROL, AUTOMATION AND ROBOTICS (CAR 2010), VOL 3, 2010, :282-285
[9]   Towards improved automatic chemical kinetic model reduction regarding ignition delays and flame speeds [J].
Chen, Yulin ;
Chen, Jyh-Yuan .
COMBUSTION AND FLAME, 2018, 190 :293-301
[10]   Evaluation of electrical conductivity models for conductive polymer composites [J].
Clingerman, ML ;
King, JA ;
Schulz, KH ;
Meyers, JD .
JOURNAL OF APPLIED POLYMER SCIENCE, 2002, 83 (06) :1341-1356