Investigations on Cmc2-SiPX structures and physical properties by first-principles calculations
arXiv:2112.09928 · doi:10.5488/CMP.24.43602
Abstract
The new structures, Cmc2-SiPX (X=S, Se, Te, and Po), are predicted, and their mechanical, electronic and optical properties are investigated with the density functional theory, by first principles calculations. The elastic constants of the four compounds are calculated by the stress-strain method. The calculations of the elastic stability criteria and phonon dispersion spectra imply that they are mechanically and dynamically stable at zero pressure. The mechanical parameters, such as shear moduli , bulk moduli , Young's moduli and Poisson's ratios are evaluated by the Voigt-Reuss-Hill approach. The Cmc2-SiPX has the largest hardness due to the largest Young's modulus in the four compounds, and it is a covalent crystal. The anisotropies of their mechanical properties are also analyzed. The band structures and densities of states, which are calculated by using HSE06, show that Cmc2-SiPX compounds are indirect bandgap semiconductors, and the values of the band gaps decrease with increasing atomic number from S, Se, Te, to Po. In addition, the longitudinal sound velocity and transverse sound velocity for Cmc2-SiPX have been investigated. The dielectric constant, electron energy loss, refractive index, reflectivity, absorption and conductivity are analyzed to gain the optical properties of SiPX.
14 pages, 6 figures, 5 tables