paper

Study of the superconducting phase in silicene under biaxial tensile strain

arXiv:1502.00021

Abstract

The electron-doped silicene under the influence of the biaxial tensile strain is predicted to be the phonon-mediated superconductor. By using the Eliashberg formalism, we investigate the thermodynamic properties of the superconducting silicene in the case when the tension is and the electron doping equals . Under such conditions, silicene monolayer is expected to exhibit the highest superconducting transition temperature (). In particular, based on the electron-phonon spectral function and assuming wide range of the Coulomb pseudopotential values () it is stated that the superconducting transition temperature decreases from K to K. Similar behavior is observed in the case of the zeroth temperature superconducting energy gap at the Fermi level: meV. Other thermodynamic parameters differ from the predictions of the Bardeen-Cooper-Schrieffer theory. In particular, the ratio of the energy gap to the critical temperature changes in the range from to . The ratio of the specific heat jump to the specific heat in the normal state takes the values from to , and the ratio of the critical temperature and specific heat in the normal state to the thermodynamic critical field increases from to . It is also determined that the maximum value of the electron effective mass equals of the electron band mass.