Abstract
Monolayer FeSe exhibits the highest transition temperature among the iron based superconductors and appears to be fully gapped, seemingly consistent with s-wave superconductivity. Here, we develop a theory for the superconductivity based on coupling to fluctuations of checkerboard magnetic order (which has the same translation symmetry as the lattice). The electronic states are described by a symmetry based k·p-like theory and naturally account for the states observed by angle resolved photoemission spectroscopy. We show that a prediction of this theory is that the resultant superconducting state is a fully gapped, nodeless, d-wave state. This state, which would usually have nodes, stays nodeless because, as seen experimentally, the relevant spin-orbit coupling has an energy scale smaller than the superconducting gap.
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CITATION STYLE
Agterberg, D. F., Shishidou, T., O’Halloran, J., Brydon, P. M. R., & Weinert, M. (2017). Resilient Nodeless d -Wave Superconductivity in Monolayer FeSe. Physical Review Letters, 119(26). https://doi.org/10.1103/PhysRevLett.119.267001
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