Temperature and doping dependence of normal state spectral properties in a two-orbital model for ferropnictides
J. D. Querales Flores, C. I. Ventura, R. Citro, J.J., Rodr\'iguez-N\'u\~nez

TL;DR
This study uses a perturbative Green's functions approach on a minimal two-orbital model to analyze how temperature and doping affect the normal state spectral properties of ferropnictides, aligning with experimental observations.
Contribution
It provides a detailed theoretical analysis of temperature and doping effects on spectral functions in ferropnictides using a minimal model and Green's functions, including new predictions for unprobed Brillouin zone points.
Findings
Asymmetric doping effects consistent with experiments
Quantitative agreement with chemical potential shifts
Temperature-dependent spectral weight redistributions
Abstract
Using a second-order perturbative Green's functions approach we determined the normal state single-particle spectral function employing a minimal effective model for iron-based superconductors. The microscopic model, used before to study magnetic fluctuations and superconducting properties, includes the two effective tight-binding bands proposed by S.Raghu et al. [Phys. Rev. B 77, 220503 (R) (2008)], and intra- and inter-orbital local electronic correlations, related to the Fe-3d orbitals. Here, we focus on the study of normal state electronic properties, in particular the temperature and doping dependence of the total density of states, , and of in different Brillouin zone regions, and compare them to the existing angle resolved photoemission spectroscopy (ARPES) and previous theoretical results in ferropnictides. We obtain an…
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