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Thermal transport properties of MoS2 and MoSe2 monolayers

机译:MoS2和MoSe2单层的热传递性质

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The isolation of single- to few-layer transition metal dichalcogenides opens new directions in the application of two-dimensional materials to nanoelectronics. The characterization of thermal transport in these new low-dimensional materials is needed for their efficient implementation, either for general overheating issues or specific applications in thermoelectric devices. In this study, the lattice thermal conductivities of single-layer MoS2 and MoSe2 are evaluated using classical molecular dynamics methods. The interactions between atoms are defined by Stillinger-Weber-type empirical potentials that are developed to represent the structural, mechanical, and vibrational properties of the given materials. In the parameterization of the potentials, a stochastic optimization algorithm, namely particle swarm optimization, is utilized. The final parameter sets produce quite consistent results with density functional theory in terms of lattice parameters, bond distances, elastic constants, and vibrational properties of both single-layer MoS2 and MoSe2. The predicted thermal properties of both materials are in very good agreement with earlier first-principles calculations. The discrepancies between the calculations and experimental measurements are most probably caused by the pristine nature of the structures in our simulations.
机译:从单层到几层过渡金属二硫键的分离为二维材料在纳米电子学中的应用开辟了新的方向。为了有效地实现这些新的低尺寸材料的热传输特性,无论是一般的过热问题还是热电设备中的特定应用,都需要对其进行表征。在这项研究中,使用经典的分子动力学方法评估了单层MoS2和MoSe2的晶格热导率。原子之间的相互作用由斯蒂林格-韦伯型经验势定义,该势被开发来表示给定材料的结构,机械和振动特性。在电势的参数化过程中,采用了随机优化算法,即粒子群算法。最终参数集使用密度泛函理论在单层MoS2和MoSe2的晶格参数,键距,弹性常数和振动特性方面产生了非常一致的结果。两种材料的预测热性能与早期的第一性原理计算非常吻合。计算和实验测量之间的差异很可能是由于我们模拟中结构的原始性质引起的。

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