Thermoelectric behaviour of melt processed carbon nanotube/graphite/poly(lactic acid) conductive biopolymer nanocomposites (CPC)

被引:82
作者
Antar, Z. [1 ,2 ,3 ]
Feller, J. F. [1 ]
Noel, H. [2 ]
Glouannec, P. [2 ]
Elleuch, K. [3 ]
机构
[1] European Univ Brittany UEB, Smart Plast Grp, LIMATB UBS, Lorient, France
[2] European Univ Brittany UEB, Energet & Thermal Transfers Grp, LIMATB UBS, Lorient, France
[3] ENIS, Ind Chem & Mat Unit URCIM, Sfax, Tunisia
关键词
Conductive polymer composites; Thermolectrical effect; Seebeck; ZT; Carbon nanotube; Expanded graphite; Poly(lactic acid); POLYMER COMPOSITES; THERMAL-CONDUCTIVITY; LOW PERCOLATION; NANOTUBES; ROUTE; DIFFUSIVITY; SIMULATION;
D O I
10.1016/j.matlet.2011.09.060
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
The aim of the study was to examine the possible use of conductive polymer composites (CPC) as thermoelectrical material for energy harvesting from temperature gradient. Their ease of processing, low cost and environmental impact compared to typical thermoelectric semiconductor materials were found to be strong advantages for large scale production. Our results show that eGR-CNT hybrid fillers are the most effective to enhance the CPC electrical conductivity up to sigma = 4123 S.m(-1), but that eGR is more effective to improve both thermal conductivity (lambda(c) = 5.5 W.m(-1).K-1) and SEEBECK coefficient (S = 17 mu V.K-1), whereas finally CNT give the best compromise to reach the highest ZT = 7 x 10(-5) at room temperature. This finding is attributed to the ability of CNT network to allow electron circulation by tunnelling, when junctions are separated by an insulating polymer film (even of some nm thick), whereas phonon scattering at nanointerfaces will prevent their effective transmission through the CPC. Although the intrinsic individual physical properties obtained (sigma, lambda(c), S) with the different kinds of carbon filler were good, it was not possible to completely uncouple them to maximise if. We believe that this value of ZT, too low for commercial application, can be enhanced by increasing the confinement of conducting fillers with exclusion volumes and by decreasing the thermal conductivity of the matrix with voids. (C) 2011 Elsevier B.V. All rights reserved.
引用
收藏
页码:210 / 214
页数:5
相关论文
共 47 条
[31]   Complex thermoelectric materials [J].
Snyder, G. Jeffrey ;
Toberer, Eric S. .
NATURE MATERIALS, 2008, 7 (02) :105-114
[32]   Thermoelectric materials, phenomena, and applications: A bird's eye view [J].
Tritt, TM ;
Subramanian, MA .
MRS BULLETIN, 2006, 31 (03) :188-194
[33]   Influence of twin-screw extrusion conditions on the dispersion of multi-walled carbon nanotubes in a poly(lactic acid) matrix [J].
Villmow, Tobias ;
Poetschke, Petra ;
Pegel, Sven ;
Haeussler, Liane ;
Kretzschmar, Bernd .
POLYMER, 2008, 49 (16) :3500-3509
[34]   Liquid sensing: smart polymer/CNT composites [J].
Villmow, Tobias ;
Pegel, Sven ;
John, Andreas ;
Rentenberger, Rosina ;
Poetschke, Petra .
MATERIALS TODAY, 2011, 14 (7-8) :340-345
[35]   Applications of life cycle assessment to NatureWorks™ polylactide (PLA) production [J].
Vink, ETH ;
Rábago, KR ;
Glassner, DA ;
Gruber, PR .
POLYMER DEGRADATION AND STABILITY, 2003, 80 (03) :403-419
[36]   Thermoelectric properties of conducting polyaniline/graphite composites [J].
Wang, Lei ;
Wang, Dagang ;
Zhu, Guangming ;
Li, Junqin ;
Pan, Fred .
MATERIALS LETTERS, 2011, 65 (07) :1086-1088
[37]   Thermal conductivity, thermal diffusivity, and specific heat capacity of particle filled polypropylene [J].
Weidenfeller, B ;
Höfer, M ;
Schilling, FR .
COMPOSITES PART A-APPLIED SCIENCE AND MANUFACTURING, 2004, 35 (04) :423-429
[38]   Poly(L-lactide) Crystallization Induced by Multiwall Carbon Nanotubes at Very Low Loading [J].
Xu, Hong-Sheng ;
Dai, Xiujuan J. ;
Lamb, Peter R. ;
Li, Zhong-Ming .
JOURNAL OF POLYMER SCIENCE PART B-POLYMER PHYSICS, 2009, 47 (23) :2341-2352
[39]   Isothermal Crystallization of Poly(L-lactide) Induced by Graphene Nanosheets and Carbon Nanotubes: A Comparative Study [J].
Xu, Jia-Zhuang ;
Chen, Tao ;
Yang, Chuan-Lu ;
Li, Zhong-Ming ;
Mao, Yi-Min ;
Zeng, Bao-Qing ;
Hsiao, Benjamin S. .
MACROMOLECULES, 2010, 43 (11) :5000-5008
[40]  
Yan H, 2001, MACROMOL MATER ENG, V286, P139, DOI 10.1002/1439-2054(20010301)286:3<139::AID-MAME139>3.3.CO