English

Electronic and optical properties of two-dimensional InSe from a DFT-parameterized tight-binding model

Mesoscale and Nanoscale Physics 2017-01-05 v2

Abstract

We present a tight-binding (TB) model and kp\mathbf{k\cdot p} theory for electrons in monolayer and few-layer InSe. The model is constructed from a basis of all ss and pp valence orbitals on both indium and selenium atoms, with tight-binding parameters obtained from fitting to independently computed density functional theory (DFT) band structures for mono- and bilayer InSe. For the valence and conduction band edges of few-layer InSe, which appear to be in the vicinity of the Γ\Gamma point, we calculate the absorption coefficient for the principal optical transitions as a function of the number of layers, NN. We find a strong dependence on NN of the principal optical transition energies, selection rules, and optical oscillation strengths, in agreement with recent observations \cite{Bandurin2016}. Also, we find that the conduction band electrons are relatively light (m0.140.18mem \propto 0.14-0.18 m_e), in contrast to an almost flat, and slightly inverted, dispersion of valence band holes near the Γ\Gamma-point, which is found for up to N6N \propto 6.

Keywords

Cite

@article{arxiv.1611.00262,
  title  = {Electronic and optical properties of two-dimensional InSe from a DFT-parameterized tight-binding model},
  author = {S. J. Magorrian and V. Zólyomi and V. I. Fal'ko},
  journal= {arXiv preprint arXiv:1611.00262},
  year   = {2017}
}
R2 v1 2026-06-22T16:38:47.558Z