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Computational predictions of quantum thermal transport across nanoscale interfaces

机译:量子热计算的预测运输在纳米级接口

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Interfaces are essential elements in nanoscale devices and their properties can differ significantly from their bulk counterparts. Because interfaces often act as bottlenecks in heat dissipation, the prediction and control of the interfacial thermal conductance is critical to the design of nanoscale devices. In this review, we examine the recent advances in quantum interfacial thermal transport from a theoretical and computational perspective. We discuss in detail recent advances in the Atomistic Green's Function method which is an important tool for predicting interfacial thermal transport. We also discuss recent progress in the understanding of interfacial transport mechanisms, including the role of interfacial modes, the role of anharmonic phonon–phonon coupling, the role of electron–phonon interaction, and the ways to tune the interfacial thermal conductance. Finally, we give an overview of the challenges and opportunities in this research field.
机译:接口是在纳米尺度的基本要素设备和它们的属性可以是不同的从大部分同行显著。因为接口通常作为瓶颈散热的预测和控制界面的热导率是至关重要的纳米器件的设计。评论,我们在量子研究最新进展界面热传输理论和计算角度。细节在原子论的绿色的最新进展函数法的一个重要工具预测界面热传输。讨论最近的进展的理解界面传输机制,包括界面的作用模式,非谐的角色phonon-phonon耦合的作用电子声子相互作用,优化的方法界面热导率。给的挑战和概述在这一研究领域的机会。

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