石墨烯
材料科学
热导率
化学气相沉积
基质(水族馆)
扫描热显微术
复合材料
涂层
导电体
热传导
热的
热流密度
垂直的
光电子学
纳米技术
传热
热力学
几何学
海洋学
物理
地质学
数学
作者
M. Tortello,Iwona Pasternak,Klaudia Żerańska-Chudek,Włodek Strupiński,R. S. Gonnelli,Alberto Fina
标识
DOI:10.1021/acsanm.8b02243
摘要
We performed Scanning Thermal Microscopy measurements on single layers of chemical-vapor-deposited -CVD- graphene supported by different substrates, namely SiO2, Al2O3 and PET using a double-scan technique to remove the contribution to the heat flux through the air and the cantilever. Then, by adopting a simple lumped-elements model, we developed a new method that allows determining, through a multi-step numerical analysis, the equivalent thermal properties of thermally conductive coatings of nanometric thickness. In this specific case we found that our CVD graphene is thermally equivalent, for heat injection perpendicular to the graphene planes, to a coating material of conductivity Keff=2.5+-0.3 mK and thickness teff=3.5+-0.3 nm in perfect contact with the substrate. For the SiO2 substrate, we also measured stacks made of 2 and 4 CVD monolayers and we found that the effective thermal conductivity increases with increasing number of layers and, with a technologically achievable number of layers, is expected to be comparable to that of one order of magnitude-thicker metallic thin films. This study provides a powerful method for characterizing the thermal properties of graphene in view of several thermal management applications.
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