Thermal conductivity of exfoliated graphite nanocomposites

被引:248
作者
Fukushima, H. [1 ]
T Drzal, L. [1 ]
Rook, B. P. [1 ]
Rich, M. J. [1 ]
机构
[1] Michigan State Univ, Composite Mat & Struct Ctr, E Lansing, MI 48824 USA
关键词
method; graphite composites; hot-wire method; thermal conductivity; thermal pulse method;
D O I
10.1007/s10973-005-7344-x
中图分类号
O414.1 [热力学];
学科分类号
摘要
Since the late 1990's, research has been reported where intercalated, expanded, and/or exfoliated graphite nanoflakes could also be used as reinforcements in polymer systems. The key point to utilizing graphite as a platelet nanoreinforcement is in the ability to exfoliate graphite using Graphite Intercalated Compounds (GICs). Natural graphite is still abundant and its cost is quite low compared to the other nano-size carbon materials, the cost of producing graphite nanoplatelets is expected to be similar to$5/lb. This is significantly less expensive than single wall nanotubes (SAINT) (>$45000/lb) or vapor grown carbon fiber (VGCF) ($40-50/lb), yet the mechanical, electrical, and thermal properties of crystalline graphite flakes are comparable to those of SWNT and VGCF. The use of exfoliated graphite flakes (xGnP) opens up many new applications where electromagnetic shielding, high thermal conductivity, gas barrier resistance or low flammability are required. A special thermal treatment was developed to exfoliate graphite flakes for the production of nylon and high density polypropylene nanocomposites. X-ray diffraction (XRD), scanning electron microscopy (SEM) and transmission electron microscopy (TEM) were used to assess the degree of exfoliation of the graphite platelets and the morphology of the nanocomposites. The thermal conductivity of these composites was investigated by three different methods, namely, by DSC, modified hot wire, and halogen flash lamp methods. The addition of small amounts of exfoliated graphite flakes showed a marked improvement in thermal and electrical conductivity of the composites.
引用
收藏
页码:235 / 238
页数:4
相关论文
共 21 条
[1]   THERMAL-CONDUCTIVITY OF POLYMER FILLED WITH CARBON MATERIALS - EFFECT OF CONDUCTIVE PARTICLE CHAINS ON THERMAL-CONDUCTIVITY [J].
AGARI, Y ;
UNO, T .
JOURNAL OF APPLIED POLYMER SCIENCE, 1985, 30 (05) :2225-2235
[2]   Preparation of polystyrene/graphite nanosheet composite [J].
Chen, GH ;
Wu, CL ;
Weng, WG ;
Wu, DJ ;
Yan, WL .
POLYMER, 2003, 44 (06) :1781-1784
[3]   Preparation of polymer/graphite conducting nanocomposite by intercalation polymerization [J].
Chen, GH ;
Wu, DJ ;
Weng, WG ;
Yan, WL .
JOURNAL OF APPLIED POLYMER SCIENCE, 2001, 82 (10) :2506-2513
[4]   Novel electrically conductive polypropylene/graphite nanocomposites [J].
Chen, XM ;
Shen, JW ;
Huang, WY .
JOURNAL OF MATERIALS SCIENCE LETTERS, 2002, 21 (03) :213-214
[5]   THE EFFECT OF FIBER CONCENTRATION ON THE THERMAL-CONDUCTIVITY OF A POLYCARBONATE PITCH-BASED CARBON-FIBER COMPOSITE [J].
DEMAIN, A ;
ISSI, JP .
JOURNAL OF COMPOSITE MATERIALS, 1993, 27 (07) :668-683
[6]  
DONNET JB, 1998, CARBON BLACK
[7]  
Drzal LT, 2004, US appl, Patent No. [US 20040127621 A1, 20040127621, 2004/0127621]
[8]  
FINAN JM, 1999, P SOC PLAST ENG ANN, P1547
[9]   A METHOD FOR THE DETERMINATION OF THERMAL-CONDUCTIVITY OF SHEET MATERIALS BY DIFFERENTIAL SCANNING CALORIMETRY (DSC) [J].
FLYNN, JH ;
LEVIN, DM .
THERMOCHIMICA ACTA, 1988, 126 :93-100
[10]   MEASUREMENT OF THE THERMAL-CONDUCTIVITY OF SOLID SUBSTANCES BY DSC [J].
HAKVOORT, G ;
VANREIJEN, LL ;
AARTSEN, AJ .
THERMOCHIMICA ACTA, 1985, 93 (SEP) :317-320