Litcius/Paper detail

Density matrix renormalization group based downfolding of the three-band Hubbard model: Importance of density-assisted hopping

Shengtao Jiang, D. J. Scalapino, Steven R. White

2023Physical review. B./Physical review. B30 citationsDOI

Abstract

Typical Wannier-function downfolding starts with a mean-field or density functional set of bands to construct the Wannier functions. Here, we carry out a controlled approach, using density matrix renormalization group computed natural orbital bands, to downfold the three-band Hubbard model to an effective single-band model. A sharp drop-off in the natural orbital occupancy at the edge of the first band provides a clear justification for a single-band model. Constructing Wannier functions from the first band, we compute all possible two-particle terms and retain those with significant magnitude. The resulting single-band model includes two-site density-assisted hopping terms with ${t}_{n}\ensuremath{\sim}0.6t$. These terms lead to a reduction of the ratio $U/{t}_{\mathrm{eff}}$, and are important in capturing the doping-asymmetric carrier mobility, as well as in enhancing the pairing in a single-band model for the hole-doped cuprates.

Topics & Concepts

Wannier functionPairingHubbard modelPhysicsRenormalization groupCondensed matter physicsDensity matrix renormalization groupMean field theoryQuantum mechanicsSuperconductivityPhysics of Superconductivity and MagnetismIron-based superconductors researchAdvanced Condensed Matter Physics