Pan Lijun, Carrete Jesús, Wang Zhao
Department of Physics, Guangxi University, Nanning 530004, People's Republic of China.
Institute of Materials Chemistry, TU Wien, 1060 Vienna, Austria.
J Phys Condens Matter. 2021 Oct 27;34(1). doi: 10.1088/1361-648X/ac2a7a.
Using first-principles calculations and Boltzmann transport theory, we study the effect of biaxial tensile strain on phonon transport in a Janus PtSTe monolayer. The band gap between the optical and acoustic phonon branches shrinks with increasing strain, resulting in a highly nonlinear monotonic decrease in the lattice thermal conductivity. That reduction reaches close to an order of magnitude when the gap disappears completely under high strains (>8%). This behavior is attributed to a strong enhancement of the anharmonic scattering of acoustic phonons due to the band overlap. Our findings underscore the potential of strain engineering as a class of methods to tune the thermal transport properties of two-dimensional (2D) Janus nanomaterials.
利用第一性原理计算和玻尔兹曼输运理论,我们研究了双轴拉伸应变对Janus PtSTe单层中声子输运的影响。随着应变增加,光学声子分支和声学声子分支之间的带隙缩小,导致晶格热导率呈高度非线性单调下降。当在高应变(>8%)下带隙完全消失时,这种下降接近一个数量级。这种行为归因于由于能带重叠导致的声学声子非谐散射的强烈增强。我们的数据强调了应变工程作为一类调节二维(2D)Janus纳米材料热输运性质的方法的潜力。