Phonons and thermal transport in Si/SiO$_2$ multishell nanotubes: Atomistic study
Abstract
Thermal transport in the Si/SiO multishell nanotubes is investigated theoretically. The phonon energy spectra are obtained using the atomistic Lattice Dynamics approach. Thermal conductivity is calculated using the Boltzmann transport equation within the relaxation time approximation. Redistribution of the vibrational spectra in multishell nanotubes leads to a decrease of the phonon group velocity and the thermal conductivity as compared to homogeneous Si nanowires. Phonon scattering on the Si/SiO interfaces is another key factor of strong reduction of the thermal conductivity in these structures (down to 0.2 W/mK at room temperature). We demonstrate that phonon thermal transport in Si/SiO nanotubes can be efficiently suppressed by a proper choice of nanotube's geometrical parameters: lateral cross-section, thickness and number of shells.
Keywords
Cite
@article{arxiv.2011.06676,
title = {Phonons and thermal transport in Si/SiO$_2$ multishell nanotubes: Atomistic study},
author = {C. Isacova and A. Cocemasov and D. L. Nika and V. M. Fomin},
journal= {arXiv preprint arXiv:2011.06676},
year = {2021}
}
Comments
14 pages, 4 figures