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Thermal conductivity of MoS2 monolayers from molecular dynamics simulations

机译:MoS2单层的热导率从分子动力学模拟

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Quantification of lattice thermal conductivity of two-dimensional semiconductors like MoSsub2/sub is necessary for the design of electronic and thermoelectric devices, but direct experimental measurements on free-standing samples is challenging. Molecular dynamics simulations, with appropriate corrections, can provide a reference value for thermal conductivity for these material systems. Here, we construct a new empirical forcefield of the Stillinger-Weber form, parameterized to phonon dispersion relations, lattice constants and elastic moduli and we use it to compute a material-intrinsic thermal conductivity of 38.1 W/m-K at room temperature and estimate a maximum thermal conductivity of 85.4 W/m-K at T = 200 K. We also identify that phonon scattering by the large isotopic mass distribution of Mo and S contributes a significant correction (45%) to the thermal conductivity at low temperatures.
机译:像MoS 2 这样的二维半导体的晶格热导率定量对于电子和热电器件的设计是必需的,但是对独立式样品进行直接实验测量是具有挑战性的。分子动力学模拟和适当的修正可以为这些材料系统的导热系数提供参考值。在这里,我们构造了一个斯蒂林格-韦伯(Stillinger-Weber)形式的新经验力场,将其参数化为声子色散关系,晶格常数和弹性模量,并用它来计算室温下材料固有的热导率为38.1 W / mK,并估算出最大值在T = 200 K时的热导率为85.4 W / mK。我们还发现,由于Mo和S的较大同位素质量分布,声子散射对低温下的热导率有显着修正(> 45%)。

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