The role of phonons in antiferromagnetic spin-fluctuation mediated superconductors within FLEX approximations.

ORAL

Abstract

The physics of phonon mediated conventional superconductors is well explained by the Bardeen-
Cooper-Schrieer (BCS) theory. However, the role of phonons in unconventional superconduc-
tors such as the cuprates is still not fully understood. It has been suggested that the electron-
phonon coupling due to forward-scattering or buckling mode generally helps cooper pairing,
and therefore enhances the transition temperature Tc. Here, we consider a tight-binding model typical for cuprates and treat the Coulomb interaction U within Fluctuation-Exchange (FLEX) approximations together with a momentum dependent electron-phonon coupling in a fully self-consistent Migdal-Eliashberg formalism. In the simulations, the Tc were estimated for various U and electron-phonon coupling constant λ for three types of phonon modes. The in-plane breathing mode mostly suppresses Tc while out-of-plane buckling mode and forward scattering phonons can enhance Tc; however, depending on the values of U and λ, the Tc is not always enhanced or suppressed in either case. Finally, the single-particle spectral function with/without phonons will also be shown.

Presenters

  • Ken Nakatsukasa

    • Physics, Univ of Tennessee, Knoxville

Authors

  • Ken Nakatsukasa

    • Physics, Univ of Tennessee, Knoxville
  • Yan Wang

    • Physics, University of Sherbrooke
    • Université de Sherbrooke
    • Physics, Université de Sherbrooke
  • Steven Johnston

    • Univ. of Tennessee
    • Univ of Tennessee
    • Physics, Univ of Tennessee, Knoxville
    • Physics and Astronomy, University of Tennessee
    • Department of Physics and Astronomy, University of Tennessee
    • Physics, Univ. of Tennessee
    • physics and astronomy, University of Tennessee
    • Department of Physics and Astronomy, Univ of Tennessee, Knoxville