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首页> 外文期刊>Scientific reports. >Anisotropic Thermal and Electrical Properties of Thin Thermal Interface Layers of Graphite Nanoplatelet-Based Composites
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Anisotropic Thermal and Electrical Properties of Thin Thermal Interface Layers of Graphite Nanoplatelet-Based Composites

机译:石墨纳米片基复合材料薄热界面层的各向异性热和电性能

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Thermal interface materials (TIMs) are crucial components of high density electronics and the high thermal conductivity of graphite makes this material an attractive candidate for such applications. We report an investigation of the in-plane and through-plane electrical and thermal conductivities of thin thermal interface layers of graphite nanoplatelet (GNP) based composites. The in-plane electrical conductivity exceeds its through-plane counterpart by three orders of magnitude, whereas the ratio of the thermal conductivities is about 5. Scanning electron microscopy reveals that the anisotropy in the transport properties is due to the in-plane alignment of the GNPs which occurs during the formation of the thermal interface layer. Because the alignment in the thermal interface layer suppresses the through-plane component of the thermal conductivity, the anisotropy strongly degrades the performance of GNP-based composites in the geometry required for typical thermal management applications and must be taken into account in the development of GNP-based TIMs.
机译:热界面材料(TIMs)是高密度电子设备的关键组件,石墨的高导热性使这种材料成为此类应用的有吸引力的候选材料。我们报告了对基于石墨纳米片(GNP)的复合材料的薄热界面层的面内和面内电导率和导热率的研究。平面内电导率比其贯穿面电导率大三个数量级,而热导率之比约为5。扫描电子显微镜显示,传输特性中的各向异性是由于导电体的面内取向引起的。在热界面层形成期间发生的GNP。由于热界面层中的排列抑制了导热的贯穿平面分量,因此各向异性会严重降低基于GNP的复合材料在典型热管理应用所需的几何形状中的性能,并且在开发GNP时必须将其考虑在内基于TIM的。

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