Improved Bending Strength and Thermal Conductivity of Diamond/Al Composites with Ti Coating Fabricated by Liquid–Solid Separation Method

Author:

Zhou Hongyu1ORCID,Jia Qijin2,Sun Jing3,Li Yaqiang4,He Yinsheng1,Bi Wensi5,Zheng Wenyue1

Affiliation:

1. National Center for Materials Service Safety, University of Science and Technology Beijing, Beijing 100083, China

2. Beijing System Design Institute of Electro-Mechanic Engineering, Beijing 100039, China

3. Beijing Hangxing Machinery Co., Ltd., Beijing 100013, China

4. Institute for Advanced Materials and Technology, University of Science and Technology Beijing, Beijing 100083, China

5. National Academy of Forestry and Grassland Administration, Beijing 102600, China

Abstract

In response to the rapid development of high-performance electronic devices, diamond/Al composites with high thermal conductivity (TC) have been considered as the latest generation of thermal management materials. This study involved the fabrication of diamond/Al composites reinforced with Ti-coated diamond particles using a liquid–solid separation (LSS) method. The interfacial characteristics of composites both without and with Ti coatings were evaluated using SEM, XRD, and EMPA. The results show that the LSS technology can fabricate diamond/Al composites without Al4C3, hence guaranteeing excellent mechanical and thermophysical properties. The higher TC of the diamond/Al composite with a Ti coating was attributed to the favorable metallurgical bonding interface compounds. Due to the non-wettability between diamond and Al, the TC of uncoated diamond particle-reinforced composites was only 149 W/m·K. The TC of Ti-coated composites increased by 85.9% to 277 W/m·K. A simultaneous comparison and analysis were performed on the features of composites reinforced by Ti and Cr coatings. The results suggest that the application of the Ti coating increases the bending strength of the composite, while the Cr coating enhances the TC of the composite. We calculate the theoretical TC of the diamond/Al composite by using the differential effective medium (DEM) and Maxwell prediction model and analyze the effect of Ti coating on the TC of the composite.

Funder

National Natural Science Foundation of China

Proof of Concept Project for the University Alliance in Shahe Higher Education Parkname of funder

Publisher

MDPI AG

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