Faster entanglement driven by quantum resonance in many-body kicked rotors

Fuente: arXiv
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Autori principali: Paul, Sanku, Kannan, J. Bharathi, Santhanam, M. S.
Natura: Preprint
Pubblicazione: 2024
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author Paul, Sanku
Kannan, J. Bharathi
Santhanam, M. S.
author_facet Paul, Sanku
Kannan, J. Bharathi
Santhanam, M. S.
contents Quantum resonance in the paradigmatic kicked rotor system is a purely quantum effect that ignores the state of underlying classical chaos. In this work, it is shown that quantum resonance leads to superlinear entanglement production. In $N$-interacting kicked rotors set to be at quantum resonance, entanglement growth is super-linear until a crossover timescale $t^*$, beyond which growth slows down to a logarithmic form with superimposed oscillations. By mapping positional interaction to momentum space and analytically assessing the linear entropy, we unravel the mechanism driving these two distinct growth profiles. The analytical results agree with the numerical simulations performed for two- and three-interacting kicked rotors. The late time entanglement oscillation is sensitive to changes in scaled Planck's constant with a high quality factor suitable for high precision measurements. These results are amenable to an experimental realization on atom optics setup.
format Preprint
id arxiv_https___arxiv_org_abs_2405_06622
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Faster entanglement driven by quantum resonance in many-body kicked rotors
Paul, Sanku
Kannan, J. Bharathi
Santhanam, M. S.
Quantum Physics
Statistical Mechanics
Chaotic Dynamics
Quantum resonance in the paradigmatic kicked rotor system is a purely quantum effect that ignores the state of underlying classical chaos. In this work, it is shown that quantum resonance leads to superlinear entanglement production. In $N$-interacting kicked rotors set to be at quantum resonance, entanglement growth is super-linear until a crossover timescale $t^*$, beyond which growth slows down to a logarithmic form with superimposed oscillations. By mapping positional interaction to momentum space and analytically assessing the linear entropy, we unravel the mechanism driving these two distinct growth profiles. The analytical results agree with the numerical simulations performed for two- and three-interacting kicked rotors. The late time entanglement oscillation is sensitive to changes in scaled Planck's constant with a high quality factor suitable for high precision measurements. These results are amenable to an experimental realization on atom optics setup.
title Faster entanglement driven by quantum resonance in many-body kicked rotors
topic Quantum Physics
Statistical Mechanics
Chaotic Dynamics
url https://arxiv.org/abs/2405.06622