Electronic structure of FeSe monolayer superconductors: shallow bands and correlations
I.A. Nekrasov, N.S. Pavlov, M.V. Sadovskii

TL;DR
This study uses advanced calculations to explain the complex electronic band structure of FeSe monolayer superconductors, clarifying the origin of shallow and replica bands and their relation to electron correlations and interface effects.
Contribution
The paper demonstrates that correlation effects within LDA+DMFT can accurately reproduce the observed band structure, including shallow and replica bands, and clarifies their orbital origins in FeSe-based systems.
Findings
Correlation effects reproduce ARPES-observed bands near the Fermi level.
Shallow bands at the M-point are a common feature in FeSe systems.
Interface phonon interactions are unlikely to cause replica bands or significantly enhance $T_c$.
Abstract
Electronic spectra of typical single FeSe layer superconductors obtained from ARPES data reveal several puzzles: what is the origin of shallow and the so called "replica" bands near M-point and why the hole-like Fermi surfaces near -point are absent. Our extensive LDA+DMFT calculations show that correlation effects on Fe-3d states can almost quantitatively reproduce rather complicated band structure, which is observed in ARPES, in close vicinity of the Fermi level for FeSe/STO and KFeSe. Rather unusual shallow electron-like bands around the M(X)-point in the Brillouin zone are well reproduced. However, in FeSe/STO correlation effects are apparently insufficient to eliminate the hole-like Fermi surfaces around the -point, which are not observed in most ARPES experiments. Detailed analysis of the theoretical and experimental quasiparticle bands with…
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