English

Orbital selective pairing and superconductivity in iron selenides

Superconductivity 2017-06-06 v1

Abstract

An important challenge in condensed matter physics is understanding iron-based superconductors. Among these systems, the iron selenides hold the record for highest superconducting transition temperature and pose especially striking puzzles regarding the nature of superconductivity. The pairing state of the alkaline iron selenides appears to be of dd-wave type based on the observation of a resonance mode in neutron scattering, while it seems to be of ss-wave type from the nodeless gaps observed everywhere on the Fermi surface (FS). Here we propose an orbital-selective pairing state, dubbed sτ3s \tau_{3}, as a natural explanation of these disparate properties. The pairing function, containing a matrix τ3\tau_{3} in the basis of 3d3d-electron orbitals, does not commute with the kinetic part of the Hamiltonian. This dictates the existence of both intraband and interband pairing terms in the band basis. A spin resonance arises from a dd-wave-type sign change in the intraband pairing component whereas the quasiparticle excitation is fully gapped on the FS due to an ss-wave-like form factor associated with the addition in quadrature of the intraband and interband pairing terms. We demonstrate that this pairing state is energetically favored when the electron correlation effects are orbitally selective. More generally, our results illustrate how the multiband nature of correlated electrons affords unusual types of superconducting states, thereby shedding new light not only on the iron-based materials but also on a broad range of other unconventional superconductors such as heavy fermion and organic systems.

Keywords

Cite

@article{arxiv.1703.03170,
  title  = {Orbital selective pairing and superconductivity in iron selenides},
  author = {Emilian M. Nica and Rong Yu and Qimiao Si},
  journal= {arXiv preprint arXiv:1703.03170},
  year   = {2017}
}

Comments

9 pages, 5 figures, plus supplementary material; finalized version with a more streamlined presentation; to appear in Npj Quantum Materials. arXiv admin note: text overlap with arXiv:1505.04170

R2 v1 2026-06-22T18:40:40.033Z