Statistical Floquet prethermalization of the Bose-Hubbard model

The manipulation of many-body systems often involves time-dependent forces that cause unwanted heating. One strategy to suppress heating is to use time-periodic (Floquet) forces at large driving frequencies. For quantum spin systems with bounded spectra, it was shown rigorously that the heating rate...

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Main Author: Emanuele G. Dalla Torre, David Dentelski
Format: Article
Language:English
Published: SciPost 2021-08-01
Series:SciPost Physics
Online Access:https://scipost.org/SciPostPhys.11.2.040
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spelling doaj-9e9266a4a5754b94919552750becb1842021-08-24T09:29:59ZengSciPostSciPost Physics2542-46532021-08-0111204010.21468/SciPostPhys.11.2.040Statistical Floquet prethermalization of the Bose-Hubbard modelEmanuele G. Dalla Torre, David DentelskiThe manipulation of many-body systems often involves time-dependent forces that cause unwanted heating. One strategy to suppress heating is to use time-periodic (Floquet) forces at large driving frequencies. For quantum spin systems with bounded spectra, it was shown rigorously that the heating rate is exponentially small in the driving frequency. Recently, the exponential suppression of heating has also been observed in an experiment with ultracold atoms, realizing a periodically driven Bose-Hubbard model. This model has an unbounded spectrum and, hence, is beyond the reach of previous theoretical approaches. Here, we study this model with two semiclassical approaches valid, respectively, at large and weak interaction strengths. In both limits, we compute the heating rates by studying the statistical probability to encounter a many-body resonance, and obtain a quantitative agreement with the exact diagonalization of the quantum model. Our approach demonstrates the relevance of statistical arguments to Floquet perthermalization of interacting many-body quantum systems.https://scipost.org/SciPostPhys.11.2.040
collection DOAJ
language English
format Article
sources DOAJ
author Emanuele G. Dalla Torre, David Dentelski
spellingShingle Emanuele G. Dalla Torre, David Dentelski
Statistical Floquet prethermalization of the Bose-Hubbard model
SciPost Physics
author_facet Emanuele G. Dalla Torre, David Dentelski
author_sort Emanuele G. Dalla Torre, David Dentelski
title Statistical Floquet prethermalization of the Bose-Hubbard model
title_short Statistical Floquet prethermalization of the Bose-Hubbard model
title_full Statistical Floquet prethermalization of the Bose-Hubbard model
title_fullStr Statistical Floquet prethermalization of the Bose-Hubbard model
title_full_unstemmed Statistical Floquet prethermalization of the Bose-Hubbard model
title_sort statistical floquet prethermalization of the bose-hubbard model
publisher SciPost
series SciPost Physics
issn 2542-4653
publishDate 2021-08-01
description The manipulation of many-body systems often involves time-dependent forces that cause unwanted heating. One strategy to suppress heating is to use time-periodic (Floquet) forces at large driving frequencies. For quantum spin systems with bounded spectra, it was shown rigorously that the heating rate is exponentially small in the driving frequency. Recently, the exponential suppression of heating has also been observed in an experiment with ultracold atoms, realizing a periodically driven Bose-Hubbard model. This model has an unbounded spectrum and, hence, is beyond the reach of previous theoretical approaches. Here, we study this model with two semiclassical approaches valid, respectively, at large and weak interaction strengths. In both limits, we compute the heating rates by studying the statistical probability to encounter a many-body resonance, and obtain a quantitative agreement with the exact diagonalization of the quantum model. Our approach demonstrates the relevance of statistical arguments to Floquet perthermalization of interacting many-body quantum systems.
url https://scipost.org/SciPostPhys.11.2.040
work_keys_str_mv AT emanuelegdallatorredaviddentelski statisticalfloquetprethermalizationofthebosehubbardmodel
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