4.8 Article

Thermally Conductive but Electrically Insulating Polybenzazole Nanofiber/Boron Nitride Nanosheets Nanocomposite Paper for Heat Dissipation of 5G Base Stations and Transformers

Journal

ACS NANO
Volume 16, Issue 9, Pages 14323-14333

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acsnano.2c04534

Keywords

boron nitride nanosheets; poly(p-phenylene benzobisoxazole); nanocomposites; thermal conductivity; electrical insulation; high-temperature stability

Funding

  1. National Natural Science Foundation of China [51877132, U19A20105, 52003153, 5196113530]
  2. Program of Shanghai Academic Research Leader [21XD1401600]

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Dielectric polymer composites are highly promising for electrical and electronic applications due to their potential in providing both high thermal conductivity and electrical insulation. In this work, highly thermally conductive and electrically insulating poly(p-phenylene benzobisoxazole) nanofiber composites were prepared by incorporating functionalized boron nitride nanosheets. The resulting nanocomposite paper exhibited excellent thermal conductivity, mechanical strength, electrical insulation properties, and fire retardance, making it suitable for high power density electrical equipment and electronic devices.
The rapid development of 5G equipment and high-power density electronic devices calls for high thermal conductivity materials for heat dissipation. Dielectric polymer composites are highly promising as the electrical insulation, mechanical property, thermal stability, and even fire retardance are also of great importance for electrical and electronic applications. However, the current thermal conductivity enhancement of dielectric polymer composites is usually at the cost of lowering the mechanical and electrical insulating properties. In this work, we report the facile preparation of highly thermally conductive and electrically insulating poly(p-phenylene benzobisoxazole) nanofiber (PBONF) composites by incorporating a low weight fraction of functionalized boron nitride nanosheets (BNNSs). With strong electrostatic interaction, the BNNSs are encapsulated by PBONFs, and the constructed robust interconnected network makes the nanocomposites exhibit a nacre-like structure. Accordingly, the nanocomposite paper has a high in-plane thermal conductivity of 21.34 W m(-1) K-1 at a low loading of 10 wt % BNNSs and exhibits an ultrahigh strength of 206 MPa. Additionally, the nanocomposite paper exhibits superior electrical insulation properties up to higher than 350 ? and excellent fire retardance. The strong heat dissipation capability of the nanocomposite paper was demonstrated in 5G base stations and control transformers, showing wide potential applications in high power density electrical equipment and electronic devices.

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