Constructing the Snail Shell-Like Framework in Thermal Interface Materials for Enhanced Through-Plane Thermal Conductivity

Affiliations
  • 1School of Aeronautics and Astronautics, Sichuan University, Chengdu 610065, China.
  • 2Hefei Hualing Co., Ltd., Hefei 230601, China.
  • 3College of Polymer Science and Engineering, State Key Laboratory of Polymer Materials Engineering, Sichuan University, Chengdu 610065, China.
  • 4School of Chemistry and Chemical Engineering, Yangzhou University, Yangzhou 225002, China.
  • 5Guangdong DFP New Material Group Co., Ltd., Shantou 515041, China.
  • 6West China Hospital/West China School of Medicine, Sichuan University, Chengdu 610041, China.
  • 7State Key Laboratory of Polymer Materials Engineering, Sichuan University, Chengdu 610065, China.

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Abstract

Melioration of the through-plane thermal conductivity (TC) of thermal interface materials (TIMs) is a sore need for efficient heat dissipation to handle an overheating concern of high-power-density electronics. Herein, we constructed a snail shell-like thermal conductive framework to facilitate vertical heat conduction in TIMs. With inspiration from spirally growing calcium carbonate platelets of snail shells, a facile double-microrod-assisted curliness method was developed to spirally coil boron nitride nanosheet (BNNS)/aramid nanofiber (ANF) laminates where interconnected BNNSs lie along the horizontal plane. Thus, vertical alignment of BNNSs in the resultant TIM was achieved, exhibiting a through-plane TC enhancement of ∼100% compared to the counterpart with randomly distributed BNNSs at the same BNNS addition (50 wt %). The Foygel’s nonlinear model revealed that this unique snail shell-like BNNS framework reduced interfacial thermal resistance by 4 orders of magnitude. Our TIM showed superior interfacial thermal dissipation efficiency, leading to a temperature reduction of 42.6 °C for the LED chip compared to the aforementioned counterpart. Our work paves a valuable way for fabricating high-performance TIMs to ensure reliable operation of electrical devices.