Liu Ying-Guang, Ren Guo-Liang, Chernatynskiy Aleksandr, Zhao Xiao-Feng
Department of Power Engineering, School of Energy and Power Engineering, North China Electric Power University, Baoding 071003, China.
Hebei Key Laboratory of Low Carbon and High Efficiency Power Generation Technology, North China Electric Power University, Baoding 071003, Hebei, China.
Phys Chem Chem Phys. 2021 Oct 20;23(40):23225-23232. doi: 10.1039/d1cp03544d.
Si/Ge superlattices (SLs) are good candidates for thermoelectric materials because of their remarkable thermal insulating performance compared with their bulk counterparts. In this paper, the non-equilibrium molecular dynamics (NEMD) simulation method was applied to investigate the thermal conductivity of Si/Ge SLs containing tilted interfaces. It was found that the thermal conductivity will be 4-5 times higher than that of other angles when the period length is 4-8 atomic layers and the interface angle is 45°. This phenomenon can be attributed to the smooth arrangement of the 45° interface which induces phonon coherent transport. Meanwhile, the thermal conductivity has not been improved due to the phonon localization although the phonons satisfy the coherent transport when the interface angle is 90°. Interestingly, the thermal conductivity is almost unchanged with the increasing interface angle when the period length is large enough which exceeds 20 atomic layers. The main reason for the unchanged thermal conductivity is due to the period length which is greater than the phonon coherence length inducing the phonon incoherent transport.
硅/锗超晶格(SLs)因其与体材料相比具有卓越的隔热性能,是热电材料的理想候选者。本文采用非平衡分子动力学(NEMD)模拟方法研究了含有倾斜界面的硅/锗超晶格的热导率。研究发现,当周期长度为4 - 8个原子层且界面角为45°时,热导率比其他角度的热导率高4 - 5倍。这种现象可归因于45°界面的平滑排列,它促使声子相干输运。同时,尽管当界面角为90°时声子满足相干输运,但由于声子局域化,热导率并未提高。有趣的是,当周期长度足够大超过20个原子层时,热导率几乎不随界面角的增加而变化。热导率不变的主要原因是周期长度大于声子相干长度,导致声子非相干输运。