English

Thermodynamics and superconductivity of S$_x$Se$_{1-x}$H$_3$

Materials Science 2019-02-20 v1

Abstract

The compression of SH2_2 and its subsequent decomposition to SH3_3, presumably in a cubic Im3\overline{3}m structure, has lead to the discovery of conventional superconductivity with the highest measured and confirmed TcT_c to date, 203 K at 160 GPa. Recent theoretical studies suggest that a mixture of S with other elements of the chalcogen group could improve the superconducting temperature. Here, we present a detailed analysis of the thermodynamic properties of S and Se mixtures in the bcc lattice with Im3\overline{3}m symmetry using a cluster expansion technique to explore the phase diagram of Sx_xSe1x_{1-x}H3_{3}. In contrast to earlier reports, we find that S0.5_{0.5}Se0.5_{0.5}H3_3 is not stable in the pressure range between 150-200 GPa. However, phases at compositions S0.2_{0.2}Se0.8_{0.8}H3_3, S0.3_{0.\overline{3}}Se0.6_{0.\overline{6}}H3_3, and S0.6_{0.6}Se0.4_{0.4}H3_3 are stable at 200 GPa, while additional phases at S0.25_{0.25}Se0.75_{0.75}H3_3 and S0.75_{0.75}Se0.25_{0.25}H3_3 are accessible at lower pressures. Electron-phonon calculations show that the values of TcT_c are consistently lower for all ternary phases, indicating that mixtures of S and Se with H might not be a viable route towards compounds with improved superconducting properties.

Keywords

Cite

@article{arxiv.1812.03384,
  title  = {Thermodynamics and superconductivity of S$_x$Se$_{1-x}$H$_3$},
  author = {Maximilian Amsler},
  journal= {arXiv preprint arXiv:1812.03384},
  year   = {2019}
}