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石墨烯/环氧纳米复合材料界面热传递的若干问题。

Some Aspects of Thermal Transport across the Interface between Graphene and Epoxy in Nanocomposites.

机构信息

School of Computing, Engineering, and Mathematics, Western Sydney University , Locked Bag 1797, Sydney NSW 2751, Australia.

Institute of High-Performance Computing, A*STAR , 138632 Singapore.

出版信息

ACS Appl Mater Interfaces. 2016 Mar;8(12):8272-9. doi: 10.1021/acsami.6b00325. Epub 2016 Mar 17.

Abstract

Owing to the superior thermal properties of graphene, graphene-reinforced polymer nanocomposites hold great potential as the thermal interface materials (TIMs) dissipating heat for electronic packages. However, this application is greatly hindered by the high thermal resistance at the interface between graphene and polymer. In this paper, some important aspects of the improvement of the thermal transport across the interface between graphene and epoxy in graphene-epoxy nanocomposites, including the effectiveness of covalent and noncovalent functionalization, isotope doping, and acetylenic linkage in graphene are systematically investigated using molecular dynamics (MD) simulations. The simulation results show that the covalent and noncovalent functionalization techniques could considerably reduce the graphene-epoxy interfacial thermal resistance in the nanocomposites. Among different covalent functional groups, butyl is more effective than carboxyl and hydroxyl in reducing the interfacial thermal resistance. Different noncovalent functional molecules, including 1-pyrenebutyl, 1-pyrenebutyric acid, and 1-pyrenebutylamine, yield a similar amount of reductions. Moreover, it is found that the graphene-epoxy interfacial thermal resistance is insensitive to the carbon isotope doping in graphene, while it can be reduced moderately by replacing the sp(2) bonds in graphene with acetylenic linkages.

摘要

由于石墨烯具有优异的热性能,石墨烯增强聚合物纳米复合材料作为电子封装中散热的热界面材料(TIMs)具有很大的潜力。然而,这种应用受到石墨烯与聚合物之间界面处高热阻的极大阻碍。在本文中,使用分子动力学(MD)模拟系统地研究了改善石墨烯-环氧树脂纳米复合材料中石墨烯与环氧树脂界面热传递的一些重要方面,包括石墨烯的共价和非共价功能化、同位素掺杂和炔键的有效性。模拟结果表明,共价和非共价功能化技术可以显著降低纳米复合材料中石墨烯-环氧树脂的界面热阻。在不同的共价官能团中,丁基比羧基和羟基更有效地降低界面热阻。不同的非共价功能分子,包括 1-芘丁基、1-芘丁酸和 1-芘丁胺,产生相似程度的降低。此外,还发现石墨烯-环氧树脂界面热阻对石墨烯中的碳同位素掺杂不敏感,而用炔键替代石墨烯中的 sp(2)键可以适度降低界面热阻。

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