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首页> 外文期刊>Physica, E. Low-dimensional systems & nanostructures >Effect of biaxial strain on thermal transport in WS2 monolayer from first principles calculations
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Effect of biaxial strain on thermal transport in WS2 monolayer from first principles calculations

机译:双轴应变对第一原理计算WS2单层热传输的影响

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摘要

Recently, tungsten disulfide (WS2) monolayer has emerged as a two-dimensional material due to its outstanding physical properties. In this work, the thermal transports in strained WS2 monolayer are studied systematically by combining the first principles calculations and the Boltzmann transport equation. It can be found that the lattice thermal conductivity (k) decreases from 262.78 to 190.66 W m(-1) K-1 for biaxial tensile strain (from 0% to 8%) and from 262.78 to 217.40 W m(-1) K-1 for biaxial compressive strain (from 0% to-4%), respectively. The softened transverse/longitudinal acoustic phonon mode and the stiffened flexural acoustic phonon mode in strained WS2 monolayer change the phonon group velocities. We attribute the reduction of k in tensilely strained WS2 monolayer to the declining phonon group velocity, heat capacity and phonon lifetime of acoustic phonon modes. The comprehensive competition among the increasing phonon group velocity, heat capacity and the decreasing phonon lifetime suppresses the lattice thermal conductivity of compressively strained WS2 mono layer. Furthermore, the increasing phase space proves that the enhancing anharmonic phonon scattering, which results in the suppression of the k in tensilely strained WS2 monolayer. Additionally, the critical phonon mean free path (MFP) under different biaxial strain levels is calculated to demonstrate the contribution of the phonons with different MFPs to the total k of WS2 monolayer. This work provides a phonon behavior analysis of the thermal conduction in WS2 monolayer and paves the path for potential applications of WS2-based devices.
机译:最近,由于其出色的物理性质,钨二硫化物(WS2)单层作为二维材料。在这项工作中,通过组合第一个原理计算和Boltzmann运输方程来系统地研究应变WS2单层中的热传输。可以发现,对于双轴拉伸菌株(0%至8%)和262.78至217.40W m(-1)k -1对于双轴压缩菌株(0%至4%)。软化的横向/纵向声学声子模式和应变WS2单层中的加强弯曲声学声子模式改变了声子组速度。我们将以张力的WS2单层的k减少归因于声学声子模式的下降的声子组速度,热容量和声子寿命。众所周转缓群体速度,热容量和降低的声子寿命的综合竞争抑制了压缩应变WS2单层的晶格导热率。此外,增加的相位空间证明增强的Anharmonic源散射,这导致抑制拉链WS2单层的k。另外,计算不同双轴应变水平下的临界声子均值自由路径(MFP)以证明声子与不同MFP的贡献到WS2单层的总K.这项工作提供了对WS2单层的热传导的声音行为分析,并铺平了基于WS2的设备的潜在应用的路径。

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