Towards numerically exact computation of conductivity in the thermodynamic limit of interacting lattice models

Fuente: arXiv
Salvato in:
Dettagli Bibliografici
Autori principali: Kovačević, Jeremija, Ferrero, Michel, Vučičević, Jakša
Natura: Preprint
Pubblicazione: 2025
Soggetti:
Accesso online:
Tags: Aggiungi Tag
Nessun Tag, puoi essere il primo ad aggiungerne!!
_version_ 1866909803498962944
author Kovačević, Jeremija
Ferrero, Michel
Vučičević, Jakša
author_facet Kovačević, Jeremija
Ferrero, Michel
Vučičević, Jakša
contents Computing dynamical response functions in interacting lattice models is a long standing challenge in condensed matter physics. In view of recent results, the dc resistivity $ρ_\mathrm{dc}$ in the weak coupling regime of the Hubbard model is of great interest, yet it is not fully understood. The challenge lies in having to work with large lattices while avoiding analytical continuation. The weak-coupling $ρ_\mathrm{dc}$ results were so far computed at the level of the Boltzmann theory and at the level of the Kubo bubble approximation, which neglects vertex corrections. Neither theory was so far rigorously proven to give exact results even at infinitesimal coupling, and the respective dc resistivity results differ greatly. In this work we develop, cross-check and apply two state-of-the-art methods for obtaining dynamical response functions. We compute the optical conductivity at weak coupling in the Hubbard model in a fully controlled way, in the thermodynamic limit and without analytical continuation. We show that vertex corrections persist to infinitesimal coupling, with a constant ratio to the Kubo bubble. We connect our methods with the Boltzmann theory, and show that the latter applies additional approximations, which lead to quantitatively incorrect scaling of $ρ_\mathrm{dc}$ with respect to the coupling constant.
format Preprint
id arxiv_https___arxiv_org_abs_2501_19118
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Towards numerically exact computation of conductivity in the thermodynamic limit of interacting lattice models
Kovačević, Jeremija
Ferrero, Michel
Vučičević, Jakša
Strongly Correlated Electrons
Computing dynamical response functions in interacting lattice models is a long standing challenge in condensed matter physics. In view of recent results, the dc resistivity $ρ_\mathrm{dc}$ in the weak coupling regime of the Hubbard model is of great interest, yet it is not fully understood. The challenge lies in having to work with large lattices while avoiding analytical continuation. The weak-coupling $ρ_\mathrm{dc}$ results were so far computed at the level of the Boltzmann theory and at the level of the Kubo bubble approximation, which neglects vertex corrections. Neither theory was so far rigorously proven to give exact results even at infinitesimal coupling, and the respective dc resistivity results differ greatly. In this work we develop, cross-check and apply two state-of-the-art methods for obtaining dynamical response functions. We compute the optical conductivity at weak coupling in the Hubbard model in a fully controlled way, in the thermodynamic limit and without analytical continuation. We show that vertex corrections persist to infinitesimal coupling, with a constant ratio to the Kubo bubble. We connect our methods with the Boltzmann theory, and show that the latter applies additional approximations, which lead to quantitatively incorrect scaling of $ρ_\mathrm{dc}$ with respect to the coupling constant.
title Towards numerically exact computation of conductivity in the thermodynamic limit of interacting lattice models
topic Strongly Correlated Electrons
url https://arxiv.org/abs/2501.19118