Destruction and formation of a conductive carbon nanotube network in polymer melts:: In-line experiments

被引:134
作者
Alig, Ingo [1 ]
Lellinger, Dirk [1 ]
Engel, Martin [1 ]
Skipa, Tetyana [1 ]
Poetschke, Petra [2 ]
机构
[1] Deutsch Kunststoff Inst Darmstadt, D-64289 Darmstadt, Germany
[2] Leibniz Inst Polymerforsch Dresden eV IPF, D-01069 Dresden, Germany
关键词
polymer/carbon nanotube composite; extrusion; electric conductivity;
D O I
10.1016/j.polymer.2008.01.073
中图分类号
O63 [高分子化学(高聚物)];
学科分类号
070305 ; 080501 ; 081704 ;
摘要
Investigations on electric conductivity and dielectric permittivity have been performed during melt processing of polycarbonate (PC) and polyamide 6 (PA6) containing different amounts of multi-walled carbon nanotubes (MWNT). For the experiments a measurement slit die containing two electrodes in capacitor geometry was flanged to the outlet of a twin-screw extruder. AC conductivity and the related complex permittivity were measured in the frequency range from 21.5 to 10(6) Hz for different processing conditions (melt temperature and throughput) and after stopping the extruder. It was found that the conductivity dropped down to values typical for the matrix polymer when the extrusion started. After the extruder was stopped the conductivity shows an increase of up to eight orders of magnitude with time. This conductivity recovery in the rest time after mechanical deformation was found to be faster for increasing melt temperature or samples with higher CNT concentration. The increase of the conductivity in the quiescent melt is explained by reorganization of the conductive network-like filler structure, which was - at least partially - destroyed under mechanical deformation. The reformation kinetics of the conductive network after mechanical deformation is considered to be an agglomeration process, which can be approximated by a combination of cluster aggregation and percolation theory. (c) 2008 Elsevier Ltd. All rights reserved.
引用
收藏
页码:1902 / 1909
页数:8
相关论文
共 21 条
[1]   Electrical conductivity recovery in carbon nanotube polymer composites after transient shear [J].
Alig, I. ;
Skipa, T. ;
Engel, M. ;
Lellinger, D. ;
Pegel, S. ;
Poetschke, P. .
PHYSICA STATUS SOLIDI B-BASIC SOLID STATE PHYSICS, 2007, 244 (11) :4223-4226
[2]   Combination of NIR, Raman, ultrasonic and dielectric spectroscopy for in-line monitoring of the extrusion process [J].
Alig, I ;
Fischer, D ;
Lellinger, D ;
Steinhoff, B .
MACROMOLECULAR SYMPOSIA, 2005, 230 :51-58
[3]  
ALIG I, UNPUB POLYMER
[4]  
ALIG I, 2007, GAK GUMMI FASERN KUN, V5, P280
[5]   Conductivity spectroscopy on melt processed polypropylene-multiwalled carbon nanotube composites:: Recovery after shear and crystallization [J].
Alig, Ingo ;
Lellinger, Dirk ;
Dudkin, Sergej M. ;
Poetschke, Petra .
POLYMER, 2007, 48 (04) :1020-1029
[6]  
Andrews R, 2002, MACROMOL MATER ENG, V287, P395, DOI 10.1002/1439-2054(20020601)287:6<395::AID-MAME395>3.0.CO
[7]  
2-S
[8]   Big returns from small fibers: A review of polymer/carbon nanotube composites [J].
Breuer, O ;
Sundararaj, U .
POLYMER COMPOSITES, 2004, 25 (06) :630-645
[9]   High-performance nanotube-reinforced plastics: Understanding the mechanism of strength increase [J].
Coleman, JN ;
Cadek, M ;
Blake, R ;
Nicolosi, V ;
Ryan, KP ;
Belton, C ;
Fonseca, A ;
Nagy, JB ;
Gun'ko, YK ;
Blau, WJ .
ADVANCED FUNCTIONAL MATERIALS, 2004, 14 (08) :791-798
[10]   Mechanical reinforcement of polymers using carbon nanotubes [J].
Coleman, JN ;
Khan, U ;
Gun'ko, YK .
ADVANCED MATERIALS, 2006, 18 (06) :689-706