English

Strain induced bang-gap engineering in layered $\text{TiS}_3$

Materials Science 2015-09-03 v1 Mesoscale and Nanoscale Physics

Abstract

By combining {\it ab initio} calculations and experiments we demonstrate how the band gap of the transition metal tri-chalcogenide TiS3_3 can be modified by inducing tensile or compressive strain. We show by numerical calculations that the electronic band gap of layered TiS3_3 can be modified for monolayer, bilayer and bulk material by inducing either hydrostatic pressure or strain. In addition, we find that the monolayer and bilayer exhibits a transition from a direct to indirect gap when the strain is increased in the direction of easy transport. The ability to control the band gap and its nature can have an impact in the use of TiS3_3 for optical applications. We verify our prediction via optical absorption experiments that present a band gap increase of up to 10\% upon tensile stress application along the easy transport direction.

Keywords

Cite

@article{arxiv.1509.00532,
  title  = {Strain induced bang-gap engineering in layered $\text{TiS}_3$},
  author = {Robert Biele and Eduardo Flores and Jose Ramon Ares and Carlos Sanchez and Isabel J. Ferrer and Gabino Rubio-Bollinger and Andres Castellanos-Gomez and Roberto D'Agosta},
  journal= {arXiv preprint arXiv:1509.00532},
  year   = {2015}
}

Comments

12 pages, 5 figures, latex2e (pdflatex)

R2 v1 2026-06-22T10:47:01.967Z