Huang Yao, Tan Cong, Wan Jing, Zhang Lan, Rong Yan
School of Mechanics and Safety Engineering, Zhengzhou University, Zhengzhou, 450001, People's Republic of China.
J Mol Model. 2025 Jan 27;31(2):63. doi: 10.1007/s00894-025-06293-z.
SiGe nanotubes (SiGeNTs) hold significant promise for applications in nanosolar cells, optoelectronic systems, and interconnects, where thermal conductivity is critical to performance. This study investigates the effects of length, diameter, temperature, and axial strain on the thermal conductivity of armchair and zigzag SiGeNTs through molecular dynamics simulations. Results indicate that thermal conductivity increases with sample length due to ballistic heat transport and decreases with temperature as phonon scattering intensifies. Axial strain transitions from compression to tension enhance phonon propagation, improving conductivity. Chirality affects conductivity, with zigzag SiGeNTs consistently outperforming armchair structures, while diameter exhibits negligible impact.
Non-equilibrium molecular dynamics simulations were conducted using the LAMMPS package with the Tersoff potential to model Si-Ge interactions. Thermal conductivity was computed via Fourier's law, with the system divided into regions for controlled heat input and dissipation. Lengths, diameters, temperatures (100-500 K), and axial strains (- 6% to + 9%) were varied systematically. Phonon spectrum analysis was performed using Fourier transforms of velocity autocorrelation functions to compute.
硅锗纳米管(SiGeNTs)在纳米太阳能电池、光电子系统和互连领域具有巨大的应用潜力,其中热导率对性能至关重要。本研究通过分子动力学模拟研究了长度、直径、温度和轴向应变对扶手椅型和锯齿型SiGeNTs热导率的影响。结果表明,由于弹道热输运,热导率随样品长度增加而增加,并且随着声子散射加剧,热导率随温度降低。从压缩到拉伸的轴向应变转变增强了声子传播,提高了热导率。手性影响热导率,锯齿型SiGeNTs始终优于扶手椅型结构,而直径的影响可忽略不计。
使用带有Tersoff势的LAMMPS软件包进行非平衡分子动力学模拟,以模拟Si-Ge相互作用。通过傅里叶定律计算热导率,将系统划分为区域以控制热输入和耗散。系统地改变长度、直径、温度(100 - 500 K)和轴向应变(-6%至+9%)。使用速度自相关函数的傅里叶变换进行声子谱分析以进行计算。