4.7 Article

Insulating polymer nanocomposites with high-thermal-conduction routes via linear densely packed boron nitride nanosheets

Journal

COMPOSITES SCIENCE AND TECHNOLOGY
Volume 129, Issue -, Pages 205-213

Publisher

ELSEVIER SCI LTD
DOI: 10.1016/j.compscitech.2016.04.033

Keywords

Nanocomposites; Polymer-matrix composites (PMCs); Electrical properties; Thermal properties; Anisotropy

Funding

  1. Basic Science Research Program through the National Research Foundation of Korea(NRF) - Ministry of Science, ICT Future Planning [2015R1A5A1037548]
  2. Fundamental R&D Program for Core Technology of Materials [10050890]
  3. Human Resources Development program of the Korea Institute of Energy Technology Evaluation and Planning(KETEP) grant - Korea government Ministry of Trade, Industry and Energy, Republic of Korea [20154030200680]
  4. Grants-in-Aid for Scientific Research [16K14384] Funding Source: KAKEN

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Electrically insulating polymeric nanocomposites with high thermal conductivity have great potential for use as thermal-management materials in increasingly high-power-density electronics and optoelectronics. Conventional composite materials require a large amount, over 70 vol%, of electrically conducting fillers such as carbon allotropes to attain thermal conductivities of 1-5 W/mK, [Balandin, 2011] [1] which restricts the utility of these materials to applications that require both electrical and thermal conductivities. Here, we introduce a strategy to achieve the strongest enhancement of thermal conductivity to date at a low level of filler loading (<= 15 vol%) in insulating polymer nanocomposites with hexagonal boron nitride (BN) nanosheets. The combination of electric-field switching and the application of fillers with various aspect ratios enables the rearrangement of the BN nanofillers into linear densely packed BN structures (LDPBNs). Flexible nanocomposite films with LDPBNs exhibit electrical resistivity greater than 1.50 x 10(-6) M Omega cm and a thermal conductivity of 1.56 W/mK, a dramatic enhancement over that of pristine polysiloxane with the same BN loading (0.4 W/mK). Our strategy of electric-field-induced BN nanosheet assembly offers insight into the possibility of solving thermal-management problems using ideal thermal interface materials, thus enabling improved next-generation integrated circuits and nanoelectronics. (C) 2016 Elsevier Ltd. All rights reserved.

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