Effective Assembly of Nano-Ceramic Materials for High and Anisotropic Thermal Conductivity in a Polymer Composite

被引:84
|
作者
Hong, Haeleen [1 ]
Kim, Jong Uk [1 ]
Kim, Tae-Il [1 ,2 ]
机构
[1] Sungkyunkwan Univ SKKU, Sch Chem Engn, 2066 Seobu Ro, Suwon 16419, South Korea
[2] CNIR, IBS, 2066 Seobu Ro, Suwon 16419, South Korea
关键词
nanocomposites; thermally conductive composite; electrical insulating composite; ceramic-polymer composite; networked assembly; ceramic network; BORON-NITRIDE NANOSHEETS; MECHANICAL-PROPERTIES; SILICON-NITRIDE; ALIGNMENT; GRAPHITE; NANOCOMPOSITES; FABRICATION; LIGHT; NANOTUBES; ENHANCEMENT;
D O I
10.3390/polym9090413
中图分类号
O63 [高分子化学(高聚物)];
学科分类号
070305 ; 080501 ; 081704 ;
摘要
Recently, anisotropic heat dissipation and its management have drawn attention as a promising technique for highly integrated electrical devices. Among many potentially challenging materials such as carbon nanotube, graphene, metal particles, and inorganic ceramics commonly used for high thermally conductive fillers in a composite form, nanoscale ceramic fillers are considered ideal candidates due to their thermal conductivity, electrical insulation, and low thermal expansion coefficient. However, enhancing the thermal conductivity of a randomly dispersed ceramic-polymer composite is limited by its discontinuous filler contact and thermal expansion coefficient mismatch. Thus, recent research has focused on how to assemble and generate highly networked filler contacts to make effective pathways for heat flow, with minimized concentration of the filler in the composite. In this review, we will introduce several essential strategies to assemble fillers with a two-or three-dimensional networked composite for highly enhanced anisotropic heat dissipation. Moreover, this review elucidates filler alignment effects compared to randomly dispersed ceramic composites.
引用
收藏
页数:17
相关论文
共 50 条
  • [1] THEORETICAL PREDICTION OF THE ANISOTROPIC EFFECTIVE THERMAL CONDUCTIVITY OF COMPOSITE MATERIALS
    Gori, Fabio
    Corasaniti, Sandra
    Ciparisse, Jean-Francois
    INTERNATIONAL MECHANICAL ENGINEERING CONGRESS AND EXPOSITION - 2012, VOL 1: ADVANCES IN AEROSPACE TECHNOLOGY, 2013, : 91 - 96
  • [2] Polymer/magnesia nanofiber composite sheets with anisotropic high thermal conductivity
    Ohgoshi, Akiyoshi
    Takahashi, Kazuya
    Nakane, Koji
    JOURNAL OF MATERIALS SCIENCE-MATERIALS IN ELECTRONICS, 2019, 30 (23) : 20566 - 20573
  • [3] Polymer/alumina nanofiber composite sheets with anisotropic high thermal conductivity
    Ohgoshi A.
    Gao S.
    Takahashi K.
    Nakane K.
    Journal of Textile Engineering, 2019, 65 (04) : 67 - 72
  • [4] Polymer/magnesia nanofiber composite sheets with anisotropic high thermal conductivity
    Akiyoshi Ohgoshi
    Kazuya Takahashi
    Koji Nakane
    Journal of Materials Science: Materials in Electronics, 2019, 30 : 20566 - 20573
  • [5] Progress on the polymer composite insulating materials with high thermal conductivity
    Cao, Jinmei
    Tian, Fuqiang
    Lei, Qingquan
    CHINESE SCIENCE BULLETIN-CHINESE, 2022, 67 (07): : 640 - 654
  • [6] Preparation of nano-ceramic composite as dental prosthetic material
    Ma, J.
    Zhao, K.
    Shi, B.
    Zhang, X. D.
    Chao, Y.
    Li, Xudong
    ASBM7: ADVANCED BIOMATERIALS VII, 2007, 342-343 : 645 - +
  • [7] Biological nano-ceramic materials for holographic data storage
    Wu, PF
    Bhamidipati, M
    Coles, M
    Rao, DVGLN
    CHEMICAL PHYSICS LETTERS, 2004, 400 (4-6) : 506 - 510
  • [8] Effective thermal conductivity of fibrous composite materials
    Barta, S
    Dieska, P
    KOVOVE MATERIALY-METALLIC MATERIALS, 2003, 41 (04): : 223 - 239
  • [9] Effective thermal conductivity of particulate composite materials
    Barta, S
    Dieska, P
    KOVOVE MATERIALY-METALLIC MATERIALS, 2002, 40 (02): : 99 - 112
  • [10] A review of models for effective thermal conductivity of composite materials
    Pietrak, Karol
    Wisniewski, Tomasz S.
    JOURNAL OF POWER TECHNOLOGIES, 2015, 95 (01): : 14 - 24