Yang Yuting, Yuan Kunpeng, Wang Zhaoliang
College of New Energy, China University of Petroleum (East China), Qingdao 266580, People's Republic of China.
J Phys Condens Matter. 2024 Sep 16;36(50). doi: 10.1088/1361-648X/ad7567.
The thermal transport properties of nanowires (NWs) can be significantly influenced by the implementation of a core-shell structure, which introduces interface scattering and phonon localization effects, opening avenues for novel applications. In this paper, we use the method of non-equilibrium molecular dynamics to simulate the effects of system temperature, cross-sectional width, and nanopillar interface on the thermal transport of GaN/SiNcore-shell NWs. The thermal transport process of phonons in core-shell NWs is studied by calculating the vibrational density of states, phonon participation rate, and dispersion curve. The results show that the core-shell NWs characterized by smooth interfaces exhibit a 17.4% decrease in thermal conductivity (TC) at room temperature when contrasted with pristine GaN NWs. Furthermore, the TC of GaN/SiNcore-shell NWs can be further reduced by adding nanopillars at the interface. Due to resonance effect, thus effectively regulating the thermal transport. The presence of nanopillars increases phonon-surface scattering intensity at low-frequency and modifies phonon dispersion to decrease the group velocity. In addition, the hybridization of phonon modes between those of the nanopillars and the SiNshell gives rise to numerous dispersionless resonance phonon modes that span the entire phonon spectrum. This research delves into the effects of nanopillars and interfaces on thermal transport, providing important guidance for understanding confinement effects and establishing a robust theoretical basis for the regulation of thermal transport.
纳米线(NWs)的热输运特性会受到核壳结构的显著影响,核壳结构会引入界面散射和声子局域化效应,为新型应用开辟了道路。在本文中,我们使用非平衡分子动力学方法来模拟系统温度、横截面宽度和纳米柱界面对GaN/SiN核壳纳米线热输运的影响。通过计算态密度、声子参与率和色散曲线来研究核壳纳米线中声子的热输运过程。结果表明,与原始GaN纳米线相比,具有光滑界面的核壳纳米线在室温下的热导率(TC)降低了17.4%。此外,通过在界面处添加纳米柱,可以进一步降低GaN/SiN核壳纳米线的热导率。由于共振效应,从而有效地调节热输运。纳米柱的存在增加了低频下的声子-表面散射强度,并改变了声子色散以降低群速度。此外,纳米柱与SiN壳层的声子模式之间的杂化产生了许多跨越整个声子谱的无色散共振声子模式。本研究深入探讨了纳米柱和界面对热输运的影响,为理解限制效应和建立热输运调控的坚实理论基础提供了重要指导。