High thermal conductivity in wafer-scale cubic silicon carbide crystals

热导率 材料科学 钻石 碳化硅 半导体 薄脆饼 宽禁带半导体 光电子学 外延 凝聚态物理 纳米技术 复合材料 物理 图层(电子)
作者
Zhe Cheng,Jianbo Liang,Keisuke Kawamura,Hao Zhou,Hidetoshi Asamura,Hiroki Uratani,Janak Tiwari,Samuel Graham,Yutaka Ohno,Yasuyoshi Nagai,Tianli Feng,Naoteru Shigekawa,David G. Cahill
出处
期刊:Nature Communications [Nature Portfolio]
卷期号:13 (1) 被引量:41
标识
DOI:10.1038/s41467-022-34943-w
摘要

High thermal conductivity electronic materials are critical components for high-performance electronic and photonic devices as both active functional materials and thermal management materials. We report an isotropic high thermal conductivity exceeding 500 W m-1K-1 at room temperature in high-quality wafer-scale cubic silicon carbide (3C-SiC) crystals, which is the second highest among large crystals (only surpassed by diamond). Furthermore, the corresponding 3C-SiC thin films are found to have record-high in-plane and cross-plane thermal conductivity, even higher than diamond thin films with equivalent thicknesses. Our results resolve a long-standing puzzle that the literature values of thermal conductivity for 3C-SiC are lower than the structurally more complex 6H-SiC. We show that the observed high thermal conductivity in this work arises from the high purity and high crystal quality of 3C-SiC crystals which avoids the exceptionally strong defect-phonon scatterings. Moreover, 3C-SiC is a SiC polytype which can be epitaxially grown on Si. We show that the measured 3C-SiC-Si thermal boundary conductance is among the highest for semiconductor interfaces. These findings provide insights for fundamental phonon transport mechanisms, and suggest that 3C-SiC is an excellent wide-bandgap semiconductor for applications of next-generation power electronics as both active components and substrates.
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