English

Modeling Interlayer Interactions and Phonon Thermal Transport in Silicene Bilayer

Materials Science 2023-11-16 v2 Mesoscale and Nanoscale Physics Computational Physics

Abstract

We develop an accurate interlayer pairwise potential derived from the \textit{ab-initio} calculations and investigate the thermal transport of silicene bilayers within the framework of equilibrium molecular dynamics simulations. The electronic properties are found to be sensitive to the temperature with the opening of the band gap in the Γ\Gamma\rightarrowM direction. The calculated phonon thermal conductivity of bilayer silicene is surprisingly higher than that of monolayer silicene, contrary to the trends reported for other classes of 2D materials like graphene and hBN bilayers. This counterintuitive behavior of the bilayer silicene is attributed to the interlayer interaction effects and inherent buckling, which lead to a higher group velocity in the LA1_1/LA2_2 phonon modes. The thermal conductivity of both the mono- and bilayer silicene decreases with temperature as κT0.9\kappa\sim T^{-0.9} because of the strong correlations between the characteristic timescales of heat current autocorrelation function and temperature (τT0.75\tau\sim T^{-0.75}). The mechanisms underlying phonon thermal transport in silicene bilayers are further established by analyzing the temperature induced changes in acoustic group velocity.

Keywords

Cite

@article{arxiv.2305.15423,
  title  = {Modeling Interlayer Interactions and Phonon Thermal Transport in Silicene Bilayer},
  author = {Sapta Sindhu Paul Chowdhury and Appalakondaiah Samudrala and Santosh Mogurampelly},
  journal= {arXiv preprint arXiv:2305.15423},
  year   = {2023}
}

Comments

To appear in Phys. Rev. B

R2 v1 2026-06-28T10:45:02.238Z