Wentao Hu, Zengkai Jiao, Kaitang Huang, Long Zhang, Changyu Yin, Yangfan Liao, Hongtao Yu, Haiyun Yang, Yonggang Wang, Li Ma, Qiuping Wei, Kechao Zhou
Interface design and optimization is critical to enhance the interfacial bonding and thermal properties of the diamond/Cu composites. Herein, Cr and CuCr30 dual coatings with the different thickness on diamond particles were deposited by magnetron sputtering. The Cr element on diamond particles transformed to Cr 3 C 2 during sintering, with coexisting interfacial phases of Cr 3 C 2 and Cu to strengthen the interface bonding. Relatively thicker interlayers (∼200 nm and ∼270 nm) act as an effective bridge between diamond and Cu, improving wettability and reducing thermal stress, where no obvious debonding was found and the compact diamond/Cu composites were achieved. The results suggest that the interface structure evolution plays a critical role in determining the thermal conductivity, CTE and thermal cycling behavior of diamond/Cu composites. By measuring the thermal conductivity before and after thermal cycling, we found that the composites with an intermediate thickness of the interlayer possessed the maximum thermal conductivity (686 W/mK), while that with a thicker interlayer presented a better comprehensive performance with a relatively high initial thermal conductivity (646 W/mK), compatible CTE (7.49×10 -6 /K from room temperature to 200 °C) and stable thermal cycling performance (4% attenuation of thermal conductivity for 300 cycles from -50 °C to 150 °C). This work demonstrates that a trade-off exists between maximizing initial thermal conductivity and ensuring long-term thermal stability for diamond/Cu composites.