Coherence, Transport, and Chaos in 1D Bose-Hubbard Model: Disorder vs. Stark Potential

Fuente: arXiv
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Autores principales: Ali, Asad, Hussain, M. I., Al-Kuwari, Saif, Rahim, M. T., Kuniyil, H., Hosseiny, Seyed Mohammad, Seyed-Yazdi, Jamileh, Zad, Hamid Arian, Haddadi, Saeed
Formato: Preprint
Publicado: 2025
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author Ali, Asad
Hussain, M. I.
Al-Kuwari, Saif
Rahim, M. T.
Kuniyil, H.
Hosseiny, Seyed Mohammad
Seyed-Yazdi, Jamileh
Zad, Hamid Arian
Haddadi, Saeed
author_facet Ali, Asad
Hussain, M. I.
Al-Kuwari, Saif
Rahim, M. T.
Kuniyil, H.
Hosseiny, Seyed Mohammad
Seyed-Yazdi, Jamileh
Zad, Hamid Arian
Haddadi, Saeed
contents Quantum coherence and phase transitions are studied in a finite one-dimensional Bose--Hubbard model using exact diagonalization under thermal fluctuations, a Stark potential, and disorder. The condensate fraction, superfluid fraction, visibility, number fluctuations, and the $\ell_1$-norm of coherence are computed to characterize the Mott insulator--superfluid transition. Although finite-size effects prevent a sharp transition, ground-state properties reveal signatures of quantum criticality. Thermal fluctuations can enhance coherence via tunneling, a Stark potential promotes localization, and disorder suppresses global superfluidity while preserving local coherence. These results highlight how disorder, tilt, and temperature reshape coherence and offer insights for quantum simulation and strongly correlated phases. For systems up to six sites with unit filling, a spectral analysis is also performed through the metric mean gap ratio (MGR). However, limited statistics due to the small system size and computational constraints prevent a complete characterization of quantum chaos, yielding only approximate signatures.
format Preprint
id arxiv_https___arxiv_org_abs_2505_19071
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Coherence, Transport, and Chaos in 1D Bose-Hubbard Model: Disorder vs. Stark Potential
Ali, Asad
Hussain, M. I.
Al-Kuwari, Saif
Rahim, M. T.
Kuniyil, H.
Hosseiny, Seyed Mohammad
Seyed-Yazdi, Jamileh
Zad, Hamid Arian
Haddadi, Saeed
Quantum Gases
Quantum Physics
Quantum coherence and phase transitions are studied in a finite one-dimensional Bose--Hubbard model using exact diagonalization under thermal fluctuations, a Stark potential, and disorder. The condensate fraction, superfluid fraction, visibility, number fluctuations, and the $\ell_1$-norm of coherence are computed to characterize the Mott insulator--superfluid transition. Although finite-size effects prevent a sharp transition, ground-state properties reveal signatures of quantum criticality. Thermal fluctuations can enhance coherence via tunneling, a Stark potential promotes localization, and disorder suppresses global superfluidity while preserving local coherence. These results highlight how disorder, tilt, and temperature reshape coherence and offer insights for quantum simulation and strongly correlated phases. For systems up to six sites with unit filling, a spectral analysis is also performed through the metric mean gap ratio (MGR). However, limited statistics due to the small system size and computational constraints prevent a complete characterization of quantum chaos, yielding only approximate signatures.
title Coherence, Transport, and Chaos in 1D Bose-Hubbard Model: Disorder vs. Stark Potential
topic Quantum Gases
Quantum Physics
url https://arxiv.org/abs/2505.19071