First-principles Study on Structural, Thermal, Mechanical and Dynamic Stability of T'-MoS$_2$
Abstract
Using first-principles density functional theory calculations, we investigate the structure, stability, optical modes and electronic band gap of a distorted tetragonal MoS monolayer (T'-MoS). Our simulated scanning tunnel microscopy (STM) images of T'-MoS are dramatically similar with those STM images which were identified as K(HO)MoS from a previous experimental study. This similarity suggests that T'-MoS might have already been observed in experiment but was unexpectedly misidentified. Furthermore, we verify the stability of T'-MoS from thermal, mechanical and dynamic aspects, by \emph{ab initio} molecular dynamics simulation, elastic constants evaluation and phonon band structure calculation based on density functional perturbation theory, respectively. In addition, we calculate the eigenfrequencies and eigenvectors of the optical modes of T'-MoS at point and distinguish their Raman and infrared activity by pointing out their irreducible representations using group theory; at the same time, we compare the Raman modes of T'-MoS with those of H-MoS and T-MoS. Our results provide a useful guidance for further experimental identification and characterization of T'-MoS.
Keywords
Cite
@article{arxiv.1608.05171,
title = {First-principles Study on Structural, Thermal, Mechanical and Dynamic Stability of T'-MoS$_2$},
author = {Y. C. Liu and V. Wang and M. G. Xia and S. L. Zhang},
journal= {arXiv preprint arXiv:1608.05171},
year = {2017}
}
Comments
10 pages, 12 figures, 3 tables