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Engineering thermal rectification in MoS2 nanoribbons: a non-equilibrium molecular dynamics study

机译:MOS2纳米杆的工程热整流:非平衡分子动力学研究

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摘要

Phononics in two-dimensional (2D) materials is an emergent field with a high potential impact from the basic as well as applied research points of view. Thus it is crucial to provide strategies to control heat flow via atomic-scale engineering of the materials. In this study, thermal diodes made of single layer MoS2 nanoribbons are investigated using non-equilibrium classical molecular dynamics. Specifically, we focus on the influence of shape asymmetries of the nanoribbons on the thermal current, and obtain thermal rectification ratios up to 30% for the T-shaped nanoribbons. This behavior is then rationalized through a detailed analysis of the vibrational spectrum of the ribbons. In particular, it turns out that thermal rectification is mostly related to (i) the transversal finite size of the ribbon and (ii) to the different localization behavior of high-frequency modes for forward and backward heat flow directions. We expect our results to shed light on the potential of 2D materials for the engineering of highly efficient nanoscale thermal devices.
机译:二维(2D)材料中的声音学是一种紧急领域,具有高潜在影响的基础以及应用研究点。因此,提供通过材料原子级工程控制热流的策略至关重要。在该研究中,使用非平衡经典分子动力学研究由单层MOS2纳米波动制成的热二极管。具体而言,我们专注于纳米沥青的形状不对称对热电流的影响,并获得T形纳米波巴的热整流比率高达30%。然后通过对带的振动谱进行合理化这种行为。特别是,结果,热整流大多数与(i)带的横向有限尺寸和(ii)的横向有限尺寸与前向和向后热流动方向的高频模式的不同定位行为相关。我们预计我们的结果阐明了高效纳米级热器件工程的2D材料的潜力。

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