Three orbital model for the iron-based superconductors
Maria Daghofer, Andrew Nicholson, Adriana Moreo, Elbio Dagotto

TL;DR
This paper develops a three-orbital model for Fe-based high-T_c superconductors, capturing Fermi surface features and magnetic phases, and explores possible pairing mechanisms within this framework.
Contribution
It introduces a three-orbital Hamiltonian based on hybridization effects that better captures the physics of Fe-based superconductors than simpler models.
Findings
The three-orbital model reproduces Fermi surface shape and orbital composition from LDA calculations.
Identifies four magnetic and orbital regimes as Coulomb repulsion increases.
Constructs spin-singlet pairing operators consistent with lattice and orbital symmetries.
Abstract
The theoretical need to study the properties of the Fe-based high-T_c superconductors with reliable many-body techniques requires us to determine the minimum number of orbital degrees of freedom that will capture the physics of these materials. While the shape of the Fermi surface (FS) obtained with the local density approximation (LDA) can be reproduced by a two-orbital model, it has been argued that the bands that cross the chemical potential result from the strong hybridization of three of the Fe 3d orbitals. For this reason, a three-orbital Hamiltonian obtained with the Slater-Koster formalism by considering the hybridization of the As p orbitals with the Fe d_xz,d_yz, and d_xy orbitals is discussed here. This model reproduces qualitatively the FS shape and orbital composition obtained by LDA calculations for undoped pnictides when four electrons per Fe are considered. Within a…
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