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Graphene mediated thermal resistance reduction at strongly coupled interfaces

机译:石墨烯介导的强耦合界面处的热阻降低

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Interfacial thermal resistance plays a pivotal role in determining the thermal properties and performance of nanostructured materials, where heat transfer is predominantly phonon mediated. We show here that, in addition to the strictly defined interface region, the near interface region can significantly contribute to the overall contact resistance in the case of strongly coupled thermal interface materials. By employing non-equilibrium molecular dynamics simulations we investigate the interfacial thermal transport in a SiC/GaN system relevant to electronics, with a graphene monolayer (as a third material enhancing interfacial thermal transport) confined in between. A previously unexplored, large temperature drop at the near-interface region on the GaN side associated with strong coupling between graphene and the two confining materials is found, indicating that the overall interfacial thermal transport is dominated by the resistance at the adjoining near-interface region and not the interface itself. We further investigate and explain the mechanism behind this finding by analyzing the vibrational properties of junction atoms. The near-interface thermal resistance is found to be dominant when the confined graphene layer is strongly coupled with relatively soft confining materials. Two approaches of interface nanoengineering to effectively reduce the near-interface thermal resistance are also discussed.
机译:界面热阻在确定纳米结构材料的热性能和性能方面起着关键作用,其中传热主要是声子介导的。我们在这里表明,在严格耦合的热界面材料的情况下,除了严格定义的界面区域外,近界面区域还可以显着提高总体接触电阻。通过使用非平衡分子动力学模拟,我们研究了与电子相关的SiC / GaN系统中的界面热传输,石墨烯单层(作为增强界面热传输的第三种材料)被限制在两者之间。在GaN侧的近界面区域发现了先前未经探索的大温度下降,这与石墨烯和两种限制材料之间的强耦合有关,这表明整体界面热传输受邻接的近界面区域的电阻支配而不是界面本身。我们通过分析结原子的振动特性进一步研究和解释了这一发现的机理。当密闭石墨烯层与相对较软的密闭材料牢固耦合时,发现近界面热阻占主导。还讨论了有效降低近界面热阻的两种界面纳米工程方法。

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