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Kapitza thermal resistance characterization of epitaxial graphene-SiC(0001) interface

机译:外延石墨烯-SIC(0001)界面的Kapitza热阻表征

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摘要

This work presents the measurements of the Kapitza thermal boundary resistance (TBR) between two types of graphene monolayers epitaxially grown on the silicon face of SiC(0001) substrates by chemical vapor deposition. The studied systems consist of a graphene layer either separated from the bulk SiC by a carbon rich interface layer (called buffer layer BL) exhibiting a (6 root 3 x 6 root 3)R30 degrees surface reconstruction or quasifreestanding on the substrate, which will be referred to as QFSMG (for the quasifreestanding monolayer of graphene). The equivalent graphene monolayers' thermal resistances (ratio between the layer thickness and its thermal conductivity) and their respective TBR with the SiC substrates were characterized using a high frequency photothermal radiometry technique in order to distinguish the difference between the two interfaces. The results display a larger TBR through the BL compared to a lower one across the QFSMG. It is suggested that beyond generally used models, the presence of electronic coupling between the QFSMG and the SiC may create new channels for heat conduction at the interface. These results give new insights into the thermal transport at the nanoscale using epitaxial graphene monolayers for better usage in heat management applications (e.g., thermal diodes or thermal transistors).
机译:通过化学气相沉积,该工作介绍了在SiC(0001)基板的硅面上外延生长的两种类型的石墨烯单层之间的Kapitza热界电阻(TBR)。所研究的系统由石墨烯层由由碳含量富型接口层(称为缓冲层BL)分离的石墨烯层,其显示出(6根4 x 6根4)R30度表面重建或在基板上的Quasifreesding,这将是称为qfsmg(对于石墨烯的quasifreesding monolayer)。使用高频光热辐射测定技术表征等效石墨烯单层的热阻(层厚度和热导率之间的比率)及其各自的TBR,以区分两个接口之间的差异。结果与QFSMG的较低的结果相比,通过BL显示更大的TBR。建议除了普遍使用的模型之外,QFSMG和SiC之间的电子耦合的存在可以在接口处产生用于热传导的新通道。这些结果利用外延石墨烯单层对纳米级的热传输进行了新的洞察,以便在热管理应用中更好地使用(例如,热二极管或热晶体管)。

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  • 来源
    《Applied Physics Letters》 |2019年第22期|221601.1-221601.5|共5页
  • 作者单位

    URCA Multiscale Thermophys Lab GRESPI EA 4694 F-51687 Reims France;

    Univ Cote Azur CNRS CRHEA UPR10 F-06560 Valbonne France;

    Univ Cote Azur CNRS CRHEA UPR10 F-06560 Valbonne France;

    Univ Cote Azur CNRS CRHEA UPR10 F-06560 Valbonne France;

    URCA Lab Rech Nanosci EA 4682 F-51687 Reims France;

    URCA Multiscale Thermophys Lab GRESPI EA 4694 F-51687 Reims France;

    URCA Multiscale Thermophys Lab GRESPI EA 4694 F-51687 Reims France;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
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