Crossover from Wannier-Stark localization to charge density waves for interacting spinless fermions in one dimension

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Hauptverfasser: Boidi, Nair Aucar, Aharony, Amnon, Entin-Wohlman, Ora, Hallberg, Karen, Proetto, Cesar
Format: Preprint
Veröffentlicht: 2025
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author Boidi, Nair Aucar
Aharony, Amnon
Entin-Wohlman, Ora
Hallberg, Karen
Proetto, Cesar
author_facet Boidi, Nair Aucar
Aharony, Amnon
Entin-Wohlman, Ora
Hallberg, Karen
Proetto, Cesar
contents We study spinless fermions on a finite chain with nearest-neighbor repulsion and in the presence of a Wannier-Stark linearly-varying electric field potential. In the absence of the interaction, the eigenstates are localized for the system's sizes larger than the localization length. We present several analytical expressions for the localization length, which is proportional to the inverse of the electric field. Using the density matrix renormalization group numerical technique, we observe that the ground state exhibits a decrease of the occupation on the chain sites from the `bulk', with occupation 1, to the vacuum, with occupation 0. The width of this intermediate `edge' region is also inversely proportional to the electric field, increasing linearly with the strength of the nearest-neighbor repulsion. For strong interactions, the occupations in the intermediate region exhibit a charge density wave. We also present the local density of states for sites in the `edge' region. For the non-interacting case, the spectrum shows an increasing energy-localized structure as the field is increased, which is a consequence of the uniform energy distribution of the localized states (Wannier-Stark ladder). This structure survives for small interactions, and it smears out in the strongly interacting limit. Experimental variations of the slope of the potential (the electric field) on cold atom chains may test these predictions.
format Preprint
id arxiv_https___arxiv_org_abs_2502_04866
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Crossover from Wannier-Stark localization to charge density waves for interacting spinless fermions in one dimension
Boidi, Nair Aucar
Aharony, Amnon
Entin-Wohlman, Ora
Hallberg, Karen
Proetto, Cesar
Strongly Correlated Electrons
We study spinless fermions on a finite chain with nearest-neighbor repulsion and in the presence of a Wannier-Stark linearly-varying electric field potential. In the absence of the interaction, the eigenstates are localized for the system's sizes larger than the localization length. We present several analytical expressions for the localization length, which is proportional to the inverse of the electric field. Using the density matrix renormalization group numerical technique, we observe that the ground state exhibits a decrease of the occupation on the chain sites from the `bulk', with occupation 1, to the vacuum, with occupation 0. The width of this intermediate `edge' region is also inversely proportional to the electric field, increasing linearly with the strength of the nearest-neighbor repulsion. For strong interactions, the occupations in the intermediate region exhibit a charge density wave. We also present the local density of states for sites in the `edge' region. For the non-interacting case, the spectrum shows an increasing energy-localized structure as the field is increased, which is a consequence of the uniform energy distribution of the localized states (Wannier-Stark ladder). This structure survives for small interactions, and it smears out in the strongly interacting limit. Experimental variations of the slope of the potential (the electric field) on cold atom chains may test these predictions.
title Crossover from Wannier-Stark localization to charge density waves for interacting spinless fermions in one dimension
topic Strongly Correlated Electrons
url https://arxiv.org/abs/2502.04866