Thermal conductivity of polymer composites with the geometrical characteristics of graphene nanoplatelets

被引:166
|
作者
Kim, Hyun Su [1 ]
Bae, Hyun Sung [1 ]
Yu, Jaesang [1 ]
Kim, Seong Yun [1 ]
机构
[1] Korea Inst Sci & Technol, Inst Adv Composite Mat, Mutifunct Struct Composite Res Ctr, 92 Chudong Ro, Wanju Gun 55324, Jeonbuk, South Korea
来源
SCIENTIFIC REPORTS | 2016年 / 6卷
关键词
THERMOPLASTIC COMPOSITES; SYNERGISTIC IMPROVEMENT; THEORETICAL APPROACH; THROUGH-PLANE; HEAT-FLOW; CARBON; DISPERSION; FIBER; NITRIDE; FILLERS;
D O I
10.1038/srep26825
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
One of the most important physical factors related to the thermal conductivity of composites filled with graphene nanoplatelets (GNPs) is the dimensions of the GNPs, that is, their lateral size and thickness. In this study, we reveal the relationship between the thermal conductivity of polymer composites and the realistic size of GNP fillers within the polymer composites (measured using three-dimensional (3D) non-destructive micro X-ray CT analysis) while minimizing the effects of the physical parameters other than size. A larger lateral size and thickness of the GNPs increased the likelihood of the matrix-bonded interface being reduced, resulting in an effective improvement in the thermal conductivity and in the heat dissipation ability of the composites. The thermal conductivity was improved by up to 121% according to the filler size; the highest bulk and in-plane thermal conductivity values of the composites filled with 20 wt% GNPs were 1.8 and 7.3 W/m.K, respectively. The bulk and in-plane thermal conductivity values increased by 650 and 2,942%, respectively, when compared to the thermal conductivity values of the polymer matrix employed (0.24 W/m.K).
引用
收藏
页数:9
相关论文
共 50 条
  • [41] Thermal conductivity enhancement of ethylene glycol and water with graphene nanoplatelets
    Selvam, C.
    Lal, D. Mohan
    Harish, Sivasankaran
    THERMOCHIMICA ACTA, 2016, 642 : 32 - 38
  • [42] Thermal properties and thermal stability of polypropylene composites filled with graphene nanoplatelets
    Liang, J. Z.
    Wang, J. Z.
    Tsui, Gary C. P.
    Tang, C. Y.
    JOURNAL OF THERMOPLASTIC COMPOSITE MATERIALS, 2018, 31 (02) : 246 - 264
  • [43] Characterization of Wood and Graphene Nanoplatelets (GNPs) Reinforced Polymer Composites
    Al-Maqdasi, Zainab
    Gong, Guan
    Nystrom, Birgitha
    Emami, Nazanin
    Joffe, Roberts
    MATERIALS, 2020, 13 (09)
  • [44] A combination of graphene and graphene nanoplatelets: An effective way to improve thermal conductivity for polymers
    Chen, Junjie
    Han, Jiecheng
    RESULTS IN PHYSICS, 2019, 15
  • [45] Enhancement of the thermal conductivity of polymer composites with Ag-graphene hybrids as fillers
    Li, Zhihong
    Wang, Di
    Zhang, Min
    Zhao, Lun
    PHYSICA STATUS SOLIDI A-APPLICATIONS AND MATERIALS SCIENCE, 2014, 211 (09): : 2142 - 2149
  • [46] Experiments and modeling for thermal conductivity of graphite nanoplatelets/carbon composites
    Yue, Qi
    Jin, Shuangling
    Guo, Chenting
    Gao, Qian
    Zhang, Rui
    Jin, Minglin
    FULLERENES NANOTUBES AND CARBON NANOSTRUCTURES, 2016, 24 (12) : 762 - 768
  • [47] Concentration and Temperature Dependences of the Thermal and Electrical Conductivity of Polymer Hybrid Composites Graphite Nanoplatelets/Fe/Epoxy
    Perets, Yu. S.
    Yakovenko, O. S.
    Vovchenko, L. L.
    Len, T. A.
    Turkov, O. V.
    Matzui, L. Yu.
    METALLOPHYSICS AND ADVANCED TECHNOLOGIES, 2022, 44 (10) : 1255 - 1273
  • [48] Role of graphene waviness on the thermal conductivity of graphene composites
    Ke Chu
    Wen-sheng Li
    Hongfeng Dong
    Applied Physics A, 2013, 111 : 221 - 225
  • [49] Role of graphene waviness on the thermal conductivity of graphene composites
    Chu, Ke
    Li, Wen-sheng
    Dong, Hongfeng
    APPLIED PHYSICS A-MATERIALS SCIENCE & PROCESSING, 2013, 111 (01): : 221 - 225
  • [50] Effective thermal conductivity of polymer composites
    Singh, Ramvir
    Sharma, Pracleep
    ADVANCED ENGINEERING MATERIALS, 2008, 10 (04) : 366 - 370