Nodal versus nodeless superconductivity in iso-electronic LiFeP and LiFeAs
arXiv:1606.08460 · doi:10.1103/PhysRevB.93.241116
Abstract
Nodal superconductivity is observed in LiFeP while its counterpart LiFeAs with similar topology and orbital content of the Fermi surfaces is a nodeless superconductor. We explain this difference by solving, in the two-Fe Brillouin zone, the frequency-dependent Eliashberg equations with spin-fluctuation mediated pairing interaction. Because of Fermi surface topology details, in LiFeAs all the Fe- orbitals favor a common pairing symmetry. By contrast, in LiFeP the orbital favors a pairing symmetry different from and their competition determines the pairing symmetry and the strength of the superconducting instability: orbital strongly overcomes the others and imposes the symmetry of the superconducting order parameter. The leading pairing channel is a -type state with nodes on both hole and electron Fermi surfaces. As a consequence, the electrons weakly pair leading to a reduced transition temperature in LiFeP.
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