Polymer/magnesia nanofiber composite sheets with anisotropic high thermal conductivity

被引:8
|
作者
Ohgoshi, Akiyoshi [1 ,2 ]
Takahashi, Kazuya [1 ]
Nakane, Koji [1 ]
机构
[1] Univ Fukui, Frontier Fiber Technol & Sci, Bunkyo 3-9-1, Fukui 9108507, Japan
[2] Nissan Chem Corp, Suzumi 488-6, Funabashi, Chiba 2740052, Japan
关键词
OXIDE;
D O I
10.1007/s10854-019-02421-7
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
The performance of an electronic product depends on how efficiently it can dissipate the heat of its parts. As a result, intensive ongoing research seeks to improve the thermal conductivity of polymeric materials. In this study, we investigate magnesia nanofibers as thermal conductive filler in the resin and compared them to conventional spherical filler. Magnesia nanofiber mats were fabricated by electrospinning a solution of polyvinyl alcohol and magnesium ethoxide mixtures; they were then impregnated with resins to obtain a composite sheet. We assessed the thermal conductivity of the composite sheet. The resin sheet with aligned magnesia nanofibers content (49 vol%) had high thermal conductivity (12.9 W/mK) in the direction parallel to the aligned magnesia nanofibers. The conductivity increased in proportion to magnesia nanofiber content. In addition, the magnesia nanofiber composite sheet showed anisotropic thermal conductivity derived from the fiber direction and had electrical insulation (7.7 x 10(12) omega/), and flexibility. These electrically insulating sheets with anisotropy in thermal conductivity would be useful in designing effective heat removal paths in electronic devices.
引用
收藏
页码:20566 / 20573
页数:8
相关论文
共 50 条
  • [31] Thermal conductivity of polymer composite pigmented with titanium dioxide
    Ghebrid, N.
    Guellal, M.
    Rouabah, F.
    APPLIED PHYSICS A-MATERIALS SCIENCE & PROCESSING, 2017, 123 (04):
  • [32] Polymer composite sets new thermal conductivity standard
    Chin, S
    ELECTRONIC PRODUCTS MAGAZINE, 1999, 42 (03): : 23 - 24
  • [33] Thermal conductivity of polymer composite pigmented with titanium dioxide
    N. Ghebrid
    M. Guellal
    F. Rouabah
    Applied Physics A, 2017, 123
  • [34] Thermal Conductivity of New Carbon Polymer Composite Materials
    Popov I.A.
    Gortyshov Y.F.
    Russian Aeronautics, 2023, 66 (03): : 581 - 585
  • [35] THERMAL CONDUCTIVITY OF ANISOTROPIC SOLIDS AT HIGH TEMPERATURES - THE THERMAL CONDUCTIVITY OF MOLDED AND PYROLYTIC GRAPHITES
    VARDI, J
    HOCH, M
    JOURNAL OF THE AMERICAN CERAMIC SOCIETY, 1963, 46 (03) : 129 - 132
  • [36] Fabrication of a polymer composite with high thermal conductivity based on sintered silicon nitride foam
    Yin, Liuyan
    Zhou, Xingui
    Yu, Jinshan
    Wang, Honglei
    Ran, Changchun
    COMPOSITES PART A-APPLIED SCIENCE AND MANUFACTURING, 2016, 90 : 626 - 632
  • [37] Anisotropic and high-strength SiO2/cellulose nanofiber composite aerogel with thermal superinsulation and superhydrophobicity
    Long, Xin
    Wei, Xiongbang
    Hu, Min
    Yu, Jian
    Wang, Sizhe
    Zhou, Lichun
    Liao, Jiaxuan
    CERAMICS INTERNATIONAL, 2023, 49 (17) : 28621 - 28628
  • [38] Polymer/boron nitride nanosheet composite with high thermal conductivity and sufficient dielectric strength
    Yu, Jinhong
    Mo, Hailin
    Jiang, Pingkai
    POLYMERS FOR ADVANCED TECHNOLOGIES, 2015, 26 (05) : 514 - 520
  • [39] Mechanical and thermal properties of vapor-grown carbon nanofiber and polycarbonate composite sheets
    Choi, YK
    Sugimoto, KI
    Song, SM
    Endo, M
    MATERIALS LETTERS, 2005, 59 (27) : 3514 - 3520
  • [40] High thermal conductivity and superior thermal stability of amorphous PMDA/ODA nanofiber
    Dong, Lan
    Xu, Xiangfan
    Li, Baowen
    APPLIED PHYSICS LETTERS, 2018, 112 (22)