S. Ekbundit et al., THEORETICAL AND EXPERIMENTAL INVESTIGATION OF THE EQUATIONS OF STATE AND PHASE STABILITIES OF MGS AND CAS, Journal of physics. Condensed matter, 8(43), 1996, pp. 8251-8265
The equations of state and phase stabilities of MgS and CaS are invest
igated via non-empirical theoretical calculations using three differen
t electron-gas models: the self-consistent ion breathing (SCIB), the v
ariationally induced breathing (VIE) and the potential-induced breathi
ng (PIE) models. We apply these models on an equal footing using Kohn-
Sham ionic densities and identical interaction density functionals. Th
e calculated equations of state are compared to the compression curves
of MgS at pressures up to 54 GPa and of CaS at pressures up to 52 GPa
. The accuracies of the three electron-gas models in reproducing the e
quations of state of both compounds are generally comparable to those
previously achieved for the binary oxide and halide systems. We also i
nvestigate the phase stabilities of MgS and CaS in CsCl (B2), wurtzite
(B4) and zincblende (B3) structures. Our calculations accurately dete
rmine the B1-B2 phase transition for CaS. In the case of MgS, the tran
sition pressure is much higher than that of the current experimental m
easurement ranges. In addition, the models predict that the B4 phases
of MgS and CaS can be stabilized under moderate tensions. This result
is consistent with experimental observation of epitaxially stabilized
MgS wurtzite films.