4.4 Article

Study of the superconducting phase in silicene under biaxial tensile strain

Journal

SOLID STATE COMMUNICATIONS
Volume 200, Issue -, Pages 17-21

Publisher

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.ssc.2014.09.007

Keywords

Superconductivity; Two-dimensional systems; Silicene; Thermodynamic properties

Funding

  1. Czestochowa University of Technology - MSK CzestMAN [POIG.02.03.00-00-028/08]

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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 5% and the electron doping equals 3.5 x 10(14) cm(-2). Under such conditions, silicene monolayer is expected to exhibit the highest superconducting transition temperature (T-C). In particular, based on the electron-phonon spectral unction and assuming a wide range of the Coulomb pseudopotential values (mu* is an element of < 0.1,0.3 >) it is stated that the superconducting transition temperature decreases from 18.7 K to 11.6 K Similar behavior is observed in the case of the zeroth temperature superconducting energy gap at the Fermi level: 2 Delta(0) is an element of < 6.68, 3.88 > 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 4.14 to 3.87. The ratio of the specific heat jump to the specific heat in the normal state takes the values from 2.19 to 2.05, and the ratio of he critical temperature and specific heat in the normal state to the thermodynamic critical field increases from 0.143 to 0.155. It is also determined that the maximum value of the electron effective mass equals 2.11 of the electron band mass. (C) 2014 Elsevier Ltd. All rights reserved.

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