English

First Principles Phase Diagram Calculation for the 2D TMD system $WS_{2}-WTe_{2}$

Materials Science 2017-12-01 v1

Abstract

First principles phase diagram calculations, that included van der Waals interactions, were performed for the bulk transition metal dichalcogenide system (1X)WS2(X)WTe2(1-X) \cdot WS_{2} - (X) \cdot WTe_{2}. To obtain a converged phase diagram, a series of cluster expansion calculations were performed with increasing numbers of structure-energies, (NStrN_{Str}) up to NStr=435N_{Str}=435, used to fit the cluster expansion Hamiltonian. All calculated formation energies are positive and all ground-state analyses predict that formation energies for supercells with 16 or fewer anion sites are positive; but when 150NStr376\approx 150 N_{Str} \leq 376, false ordered ground-states are predicted. With NStr399N_{Str} \geq 399, only a miscibility gap is predicted, but one with dramatic asymmetry opposite to what one expects from size-effect considerations; i.e. the calculations predict more solubility on the small-ion S-rich side of the diagram and less on the large-ion Te-rich side. This occurs because S-rich low-energy metastable ordered configurations have lower energies than their Te-rich counterparts.

Keywords

Cite

@article{arxiv.1711.11077,
  title  = {First Principles Phase Diagram Calculation for the 2D TMD system $WS_{2}-WTe_{2}$},
  author = {B. P. Burton},
  journal= {arXiv preprint arXiv:1711.11077},
  year   = {2017}
}

Comments

6 pages 5 figures

R2 v1 2026-06-22T23:01:30.120Z