Effect of fabrication process on electrical properties of polymer/multi-wall carbon nanotube nanocomposites

被引:157
作者
Hu, Ning [1 ]
Masuda, Zen [1 ]
Yamamoto, Go [2 ]
Fukunaga, Hisao [1 ]
Hashida, Toshiyuki [2 ]
Qiu, Jinghao [3 ]
机构
[1] Tohoku Univ, Dept Aerosp Engn, Aoba Ku, Sendai, Miyagi 9808579, Japan
[2] Tohoku Univ, Fracture & Reliabil Res Inst, Aoba Ku, Sendai, Miyagi 9808579, Japan
[3] Tohoku Univ, Inst Fluid Sci, Sendai, Miyagi 9808577, Japan
关键词
polymer; MWNT; electrical property; nanocomposite; fabrication process;
D O I
10.1016/j.compositesa.2008.01.002
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Polymer/carbon nanotubes nanocomposites were fabricated by an in situ polymerization process using multi-wall carbon nanotubes (MWNT) as filler in an epoxy polymer. Effects of curing process, mixing speed, mixing time, addition of ethanol, timing of hardener addition, etc., in the fabrication process on the electrical properties of nanocomposites have been investigated. In the fabrication process, the effective formation of macroscopic conducting network in matrix is most important to enhance the electrical properties of nanocomposites. It was found that the curing temperature and the mixing conditions are key factors in the fabrication process, which influence the formation of conducting network significantly. Therefore, careful design of these factors in the fabrication process is required to achieve high electrical performances of nanocomposites. The experimental percolation threshold of the resultant nanocomposites was around 0.1 wt%. Moreover, a statistical percolation model was built up to numerically investigate the percolation threshold. The experimental electrical conductivity increases from the percolation threshold following a percolation-like power law with the identified critical exponent t as 1.75. (C) 2008 Published by Elsevier Ltd.
引用
收藏
页码:893 / 903
页数:11
相关论文
共 27 条
[1]  
Andrews R, 2002, MACROMOL MATER ENG, V287, P395, DOI 10.1002/1439-2054(20020601)287:6<395::AID-MAME395>3.0.CO
[2]  
2-S
[3]  
*ASTM, 1970, F84 ASTM 43
[4]   CLUSTER STRUCTURE AND CONDUCTIVITY OF 3-DIMENSIONAL CONTINUUM-SYSTEMS [J].
BALBERG, I ;
BINENBAUM, N .
PHYSICAL REVIEW A, 1985, 31 (02) :1222-1225
[5]   Critical concentration in percolating systems containing a high-aspect-ratio filler [J].
Celzard, A ;
McRae, E ;
Deleuze, C ;
Dufort, M ;
Furdin, G ;
Mareche, JF .
PHYSICAL REVIEW B, 1996, 53 (10) :6209-6214
[6]   ALIGNED CARBON NANOTUBE FILMS - PRODUCTION AND OPTICAL AND ELECTRONIC-PROPERTIES [J].
DEHEER, WA ;
BACSA, WS ;
CHATELAIN, A ;
GERFIN, T ;
HUMPHREYBAKER, R ;
FORRO, L ;
UGARTE, D .
SCIENCE, 1995, 268 (5212) :845-847
[7]  
Deutscher G., 1984, Percolation, Localization and Superconductivity. Proceedings of a NATO Advanced Study Institute, P95
[8]   Coagulation method for preparing single-walled carbon nanotube/poly(methyl methacrylate) composites and their modulus, electrical conductivity, and thermal stability [J].
Du, FM ;
Fischer, JE ;
Winey, KI .
JOURNAL OF POLYMER SCIENCE PART B-POLYMER PHYSICS, 2003, 41 (24) :3333-3338
[9]   Electronic transport in multiwalled carbon nanotubes contacted with patterned electrodes [J].
Hobara, R ;
Yoshimoto, S ;
Ikuno, T ;
Katayama, M ;
Yamauchi, N ;
Wongwiriyapan, W ;
Honda, S ;
Matsuda, I ;
Hasegawa, S ;
Oura, K .
JAPANESE JOURNAL OF APPLIED PHYSICS PART 2-LETTERS & EXPRESS LETTERS, 2004, 43 (8B) :L1081-L1084
[10]   Low percolation thresholds of electrical conductivity and rheology in poly(ethylene terephthalate) through the networks of multi-walled carbon nanotubes [J].
Hu, GJ ;
Zhao, CG ;
Zhang, SM ;
Yang, MS ;
Wang, ZG .
POLYMER, 2006, 47 (01) :480-488