Effective Hamiltonian for transition-metal compounds. Application to Na_xCoO_2
A.A. Aligia, T. Kroll

TL;DR
This paper presents a method to derive a low-energy effective Hamiltonian for transition-metal compounds, specifically applied to Na_xCoO_2, capturing key electronic interactions and structure with improved accuracy.
Contribution
The authors develop a scheme to construct an effective Hamiltonian by eliminating non-metal degrees of freedom, incorporating Coulomb interactions and symmetry considerations, and validate it on Na_xCoO_2.
Findings
Effective Hamiltonian accurately reproduces electronic structure of Na_xCoO_2.
Inclusion of charge redistribution affects effective interaction values.
Results align well with angle-resolved photoemission spectra.
Abstract
We describe a simple scheme to construct a low-energy effective Hamiltonian H_eff for highly correlated systems containing non-metals like O, P or As (O in what follows) and a transition-metal (M) as the active part in the electronic structure, eliminating the O degrees of freedom from a starting Hamiltonian that contains all M d orbitals and all non-metal p orbitals. We calculate all interaction terms between d electrons originating from Coulomb repulsion, as a function of three parameters (F_0, F_2 and F_4) and write them in a basis of orbitals appropriate for cubic, tetragonal, tetrahedral or hexagonal symmetry around M. The approach is based on solving exactly (numerically if necessary) a MO_n cluster containing the transition-metal atom and its n nearest O atoms (for example a CoO_6 cluster in the case of the cobaltates, or a CuO_n cluster in the case of the cuprates, in which n…
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