A good description of the electronic structure of BiS2-based superconductors is essential to understand their phase diagram, normal state and superconducting properties. To describe the first reports of normal state electronic structure features from angle resolved photoemission spectroscopy (ARPES) in LaO1-xFxBiS2, we used a minimal microscopic model to study their low energy properties. It includes the two effective tight-binding bands proposed by Usui et al., Phys. Rev. B, 86, 2012, 220501(R), and we added moderate intra- and inter-orbital electron correlations related to Bi-(p(Y), p(X)) and S-(p(Y), p(X)) orbitals. We calculated the electron Green's functions using their equations of motion, which we decoupled in second-order of perturbations on the correlations. We determined the normal state spectral density function and total density of states for La1-xFxBiS2, focusing on the description of the k-dependence, effect of doping, and the prediction of the temperature dependence of spectral properties. Including moderate electron correlations, improves the description of the few experimental ARPES and soft X-ray photoemission data available for La1-xFxBiS2. Our analytical approximation enabled us to calculate the spectral density around the conduction band minimum at (k(0)) over right arrow = (0.45 pi, 0.45 pi), and to predict the temperature dependence of the spectral properties at different BZ points, which might be verified by temperature-dependent ARPES. (C) 2016 Elsevier B.V. All rights reserved.
Normal state electronic properties of LaO1-xFxBiS2 superconductors
Citro R;
2016
Abstract
A good description of the electronic structure of BiS2-based superconductors is essential to understand their phase diagram, normal state and superconducting properties. To describe the first reports of normal state electronic structure features from angle resolved photoemission spectroscopy (ARPES) in LaO1-xFxBiS2, we used a minimal microscopic model to study their low energy properties. It includes the two effective tight-binding bands proposed by Usui et al., Phys. Rev. B, 86, 2012, 220501(R), and we added moderate intra- and inter-orbital electron correlations related to Bi-(p(Y), p(X)) and S-(p(Y), p(X)) orbitals. We calculated the electron Green's functions using their equations of motion, which we decoupled in second-order of perturbations on the correlations. We determined the normal state spectral density function and total density of states for La1-xFxBiS2, focusing on the description of the k-dependence, effect of doping, and the prediction of the temperature dependence of spectral properties. Including moderate electron correlations, improves the description of the few experimental ARPES and soft X-ray photoemission data available for La1-xFxBiS2. Our analytical approximation enabled us to calculate the spectral density around the conduction band minimum at (k(0)) over right arrow = (0.45 pi, 0.45 pi), and to predict the temperature dependence of the spectral properties at different BZ points, which might be verified by temperature-dependent ARPES. (C) 2016 Elsevier B.V. All rights reserved.I documenti in IRIS sono protetti da copyright e tutti i diritti sono riservati, salvo diversa indicazione.


