Electronic structure and lattice dynamics of few-layer InSe

POSTER

Abstract

Studies of Group-III monochalcogenides (MX, M = Ga and In, X = S, Se, and Te) have revealed their great potentials in many optoelectronic applications, including solar energy conversion, fabrication of memory devices and solid-state batteries. Among these semiconductors, indium selenide (InSe) has attracted particular attention due to its narrower direct bandgap, which makes it suitable for photovoltaic conversion. In this work, using first-principles calculations, we present a detailed study of the energetics, atomic structures, electronic structures, and lattice dynamics of InSe layers down to two-dimensional limit, namely, monolayer InSe and bilayer InSe with various stacking geometry. Calculations using various exchange-correlation functionals and pseudopotentials are tested and compared with experimental data. The dependence of the Raman spectra on the stacking geometry and the laser polarization will also be discussed.

*This work is supported by the SET grant of the Fisher College of Science and Mathematics (FCSM) at the Towson University.

Authors

  • Lucas Webster

    • Department of Physics, Astronomy and Geosciences, Towson University
  • Jia-An Yan

    • Department of Physics, Astronomy and Geosciences, Towson University
    • Department of Physics, Astronomy and Geosciences, Towson University, 8000 York Road, Towson, MD 21252
    • Towson University