4.7 Article

Enhanced thermal and electrical properties of hybrid polymer composites containing Al2O3 microspheres and nanowires

Journal

CERAMICS INTERNATIONAL
Volume 48, Issue 21, Pages 32081-32088

Publisher

ELSEVIER SCI LTD
DOI: 10.1016/j.ceramint.2022.07.147

Keywords

(C) Thermal conductivity; (B) Composites; (C) Electrical properties

Funding

  1. Korea Evaluation Institute of Industrial Technology (KEIT) - Korea government (MOTIE)
  2. National Research Foundation of Korea (NRF) - Korea government (MSIT)
  3. [20014801]
  4. [2019R1F1A1040535]

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Thermal interface materials play an important role in transferring heat from high-temperature electronic devices to heat management components. This study proposes a strategy for fabricating epoxy composites with enhanced thermal conductivity and electrical insulation using a combination of heterogeneous Al2O3 fillers. The hybrid composite demonstrates significantly improved thermal and electrical properties compared to conventional polymer composites. This approach has potential applications in various fields such as wearable devices and electric vehicles.
Thermal interface materials efficiently transfer heat from high-temperature electronic devices to heat management components to alleviate the overheating that deteriorates component lifetimes of electronic devices. Recently, high-performance polymer composites, made of polymer matrices and thermally conducting fillers, have been actively researched due to their low densities and controllable properties. However, the conventional polymer composites produced by mixing methods of homogeneous fillers have significantly low percolation and poor heat dispersion, which afford reduced mechanical and thermal performances. Herein we propose a strategy for fabricating epoxy composites that provide good electrical insulation and enhanced thermal conductivity using a combination of heterogeneous Al2O3 fillers. The epoxy composites were prepared by using a hybrid filler system comprising microspheres and nanowires, which were fabricated by spray drying and hydrothermal methods, respectively. The use of these two filler components produces a continuous network of fillers throughout the polymer matrix. The thermal conductivity of the hybrid composite is enhanced by 107.9% compared to that of the composite containing only microspheres at the same filler loading (30 wt%). Additionally, the epoxy composites produced with the hybrid filler system provide enhanced electrical insulation (with a dielectric constant of 3.5 at 1 kHz). This hybrid composite approach has the potential to be applied with a wide range of polymers and fillers for use in diverse applications (e.g., wearable devices and electrical vehicles).

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