State Key Lab for Turbulence and Complex Systems, College of Engineering, Peking University, Beijing 100871, China.
ACS Appl Mater Interfaces. 2013 Apr 10;5(7):2599-603. doi: 10.1021/am3032772. Epub 2013 Mar 22.
We investigate here heat transfer across interfaces consisting of single- and few-layer graphene sheets between silicon carbides by performing nonequilibrium molecular dynamics simulations. The interfacial thermal conducitivity κI is calculated by considering graphene layers as an interfacial phase. The results indicate that κI decreases with its thickness and heat flux but increases with the environmental temperature. Interface engineering of κI is explored by intercalating molecules between graphene layers. These guest molecules decouple electronic states across the interface, but tune κI slightly, leading to a thermally transparent but electronically insulating interface. These results provide a fundamental understanding in thermal transport across weakly bound interfaces, and design recipes for multifunctional thermal interface materials, composites and thermal management in graphene-based devices.
我们通过非平衡分子动力学模拟研究了由碳化硅中的单层和少数层石墨烯片组成的界面的热传递。通过将石墨烯层视为界面相,计算了界面热导率κI。结果表明,κI随其厚度和热通量的增加而减小,但随环境温度的升高而增大。通过在石墨烯层之间插入分子来探索κI 的界面工程。这些客体分子解耦了界面两侧的电子态,但略微调节了κI,从而形成了热透明但电子绝缘的界面。这些结果提供了对弱结合界面热传输的基本理解,并为基于石墨烯的器件中的多功能热界面材料、复合材料和热管理提供了设计方案。