Boron Nitride/Carbon Fiber High-Oriented Thermal Conductivity Material with Leaves–Branches Structure

Author:

Shu Dengfeng12,Sun Jiachen12,Huang Fei12,Qin Wenbo12ORCID,Wang Chengbiao123,Yue Wen23

Affiliation:

1. HYMN Advance Materials Technology (Shenzhen), Shenzhen 518000, China

2. School of Engineering and Technology, China University of Geosciences (Beijing), Beijing 100083, China

3. Zhengzhou Institute, China University of Geosciences (Beijing), Zhengzhou 451283, China

Abstract

In the realm of thermal interface materials (TIMs), high thermal conductivity and low density are key for effective thermal management and are particularly vital due to the growing compactness and lightweight nature of electronic devices. Efficient directional arrangement is a key control strategy to significantly improve thermal conductivity and comprehensive properties of thermal interface materials. In the present work, drawing inspiration from natural leaf and branch structures, a simple-to-implement approach for fabricating oriented thermal conductivity composites is introduced. Utilizing carbon fibers (CFs), known for their ultra-high thermal conductivity, as branches, this design ensures robust thermal conduction channels. Concurrently, boron nitride (BN) platelets, characterized by their substantial in-plane thermal conductivity, act as leaves. These components not only support the branches but also serve as junctions in the thermal conduction network. Remarkably, the composite achieves a thermal conductivity of 11.08 W/(m·K) with just an 11.1 wt% CF content and a 1.86 g/cm3 density. This study expands the methodologies for achieving highly oriented configurations of fibrous and flake materials, which provides a new design idea for preparing high-thermal conductivity and low-density thermal interface materials.

Funder

National Natural Science Foundation of China

Publisher

MDPI AG

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