Pairing symmetry and topological surface state in iron-chalcogenide superconductors

Abstract

The symmetries of superconducting gap functions remain an important question of iron-based superconductivity. Motivated by the recent angle-resolved photoemission spectroscopic measurements on iron-chalcogenide superconductors, we investigate the influence of pairing symmetries on the topological surface state. If the surface Dirac cone becomes gapped in the superconducting phase, it implies magnetization induced from time-reversal symmetry breaking pairing via spin-orbit coupling. Based on the crystalline symmetry constraints on the Ginzburg-Landau free energy, the gap function symmetries are among the possibilities of A1g(u) iA2g(u), B1g(u) iB2g(u), or, Eg(u) i Eg(u). This time-reversal symmetry breaking effect can exist in the normal state very close to Tc with the relative phase between two gap functions locked at π2. The coupling between magnetization and superconducting gap functions is calculated based on a three-orbital model for the band structure of iron-chalcogenides. This study provides the connection between the gap function symmetries and topological properties of the surface state.

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