Ab initio two-dimensional multiband low-energy models of EtMe_3Sb[Pd(dmit)_2]_2 and \kappa-(BEDT-TTF)_2Cu(NCS)_2 with comparisons to single-band models
Kazuma Nakamura, Yoshihide Yoshimoto, and Masatoshi Imada

TL;DR
This paper develops detailed ab initio multiband models for two organic salts, using advanced downfolding techniques, and compares these to simpler single-band models to better understand their electronic structures.
Contribution
It introduces a systematic method to derive multiband and single-band models for organic salts using cRPA and Wannier functions, providing a basis for more accurate theoretical studies.
Findings
Multiband models include specific HOMO and LUMO states.
Single band models focus on the HOMO-antibonding state.
Models are tailored for each compound's molecular orbital structure.
Abstract
We present ab initio two-dimensional extended Hubbard-type multiband models for EtMe_3Sb[Pd(dmit)_2]_2 and \kappa-(BEDT-TTF)_2Cu(NCS)_2, after a downfolding scheme based on the constrained random phase approximation (cRPA) and maximally-localized Wannier orbitals, together with the dimensional downfolding. In the Pd(dmit)_2 salt, the antibonding state of the highest occupied molecular orbital (HOMO) and the bonding/antibonding states of the lowest unoccupied molecular orbital (LUMO) are considered as the orbital degrees of freedom, while, in the \kappa-BEDT-TTF salt, the HOMO-antibonding/bonding states are considered. Accordingly, a three-band model for the Pd(dmit)_2 salt and a two-band model for the \kappa-(BEDT-TTF) salt are derived. We derive single band models for the HOMO-antibonding state for both of the compounds as well.
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