4.7 Article

Fabrication of high-performance 3D-interpenetrated network structures SiC/Al composites with SiC equiaxed grain frameworks

期刊

CERAMICS INTERNATIONAL
卷 49, 期 5, 页码 8281-8294

出版社

ELSEVIER SCI LTD
DOI: 10.1016/j.ceramint.2022.10.356

关键词

SiC 3D; Al composites; Equiaxed grain framework; Thermal properties; Thermal cycling stability

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Electronic packaging materials should possess excellent overall performance in thermal, mechanical, and machinability to meet the challenges of the highly integrated development of the electronics industry. Low-temperature sintering of high-strength 3D-SiC frameworks and fabrication of 3D-interpenetrated network structures SiC/Al composites were achieved. Increasing coarse powder size improved the thermal conductivity, coefficient of thermal expansion, and thermal deformation parameter of the composites, but further increasing coarse powder size reduced the mechanical properties. The composites maintained stable thermal conductivity and coefficient of thermal expansion after 100 thermal cycles, ensuring long-term service reliability.
ABS T R A C T Electronic packaging materials should integrate with excellent overall performance including thermal, me-chanical, and machinability to meet the challenges of the current highly integrated development of the elec-tronics industry. The low-temperature sintering of high-strength 3D-SiC frameworks with equiaxed grains was achieved at 2250 degrees C by regulating the contents and particle size of coarse and fine powders in bimodal SiC hybrid particles. And 3D-interpenetrated network structures SiC/Al (SiC3D/Al) composites for electronic packaging were then fabricated using a vacuum/gas pressure infiltration Al alloys process. Results indicated the thermal con-ductivity (TC), coefficient of thermal expansion (CTE), and thermal deformation parameter (TDP) of the com-posites were improved with increasing coarse powder size. And SiC3D/Al with the coarse powder size of 38 mu m and the coarse powder content of 60 wt% achieved the compatibility of optimal thermophysical and mechanical properties with flexural strength of 406.14 MPa, CTE of 5.38 x 10-6/K, TC of 230.03 W m- 1 K-1, and TDP of 0.023 matching that of Si. A further increased coarse powder particle size to 48 mu m and higher 58 mu m reduced the mechanical properties by 14% and 22%, respectively. Moreover, the composites maintained stable CTE and TC after 100 thermal cycles, and 3D-SiC framework was free of defects and no interfacial debonding, ensuring long-term service reliability. Integration of distinguished overall performance was primarily implemented by the synergistic effect of the 3D network framework with equiaxed grains mutual strong bonding as well as the clean and well-bonded interface. This technology provides a reference for the design and synthesis of high-performance electronic packaging materials with scalability and tuneability.

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