Correspondence Principle for Many-Body Scars in Ultracold Rydberg Atoms

The theory of quantum scarring—a remarkable violation of quantum unique ergodicity—rests on two complementary pillars: the existence of unstable classical periodic orbits and the so-called quasimodes, i.e., the nonergodic states that strongly overlap with a small number of the system’s eigenstates....

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Main Authors: C. J. Turner, J.-Y. Desaules, K. Bull, Z. Papić
Format: Article
Language:English
Published: American Physical Society 2021-04-01
Series:Physical Review X
Online Access:http://doi.org/10.1103/PhysRevX.11.021021
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spelling doaj-1d2d7444447840628456c469cbd760d62021-04-26T14:53:51ZengAmerican Physical SocietyPhysical Review X2160-33082021-04-0111202102110.1103/PhysRevX.11.021021Correspondence Principle for Many-Body Scars in Ultracold Rydberg AtomsC. J. TurnerJ.-Y. DesaulesK. BullZ. PapićThe theory of quantum scarring—a remarkable violation of quantum unique ergodicity—rests on two complementary pillars: the existence of unstable classical periodic orbits and the so-called quasimodes, i.e., the nonergodic states that strongly overlap with a small number of the system’s eigenstates. Recently, interest in quantum scars has been revived in a many-body setting of Rydberg atom chains. While previous theoretical works have identified periodic orbits for such systems using time-dependent variational principle (TDVP), the link between periodic orbits and quasimodes has been missing. Here we provide a conceptually simple analytic construction of quasimodes for the nonintegrable Rydberg atom model and prove that they arise from a “requantization” of previously established periodic orbits when quantum fluctuations are restored to all orders. Our results shed light on the TDVP classical system simultaneously playing the role of both the mean-field approximation and the system’s classical limit, thus allowing us to firm up the analogy between the eigenstate scarring in the Rydberg atom chains and the single-particle quantum systems.http://doi.org/10.1103/PhysRevX.11.021021
collection DOAJ
language English
format Article
sources DOAJ
author C. J. Turner
J.-Y. Desaules
K. Bull
Z. Papić
spellingShingle C. J. Turner
J.-Y. Desaules
K. Bull
Z. Papić
Correspondence Principle for Many-Body Scars in Ultracold Rydberg Atoms
Physical Review X
author_facet C. J. Turner
J.-Y. Desaules
K. Bull
Z. Papić
author_sort C. J. Turner
title Correspondence Principle for Many-Body Scars in Ultracold Rydberg Atoms
title_short Correspondence Principle for Many-Body Scars in Ultracold Rydberg Atoms
title_full Correspondence Principle for Many-Body Scars in Ultracold Rydberg Atoms
title_fullStr Correspondence Principle for Many-Body Scars in Ultracold Rydberg Atoms
title_full_unstemmed Correspondence Principle for Many-Body Scars in Ultracold Rydberg Atoms
title_sort correspondence principle for many-body scars in ultracold rydberg atoms
publisher American Physical Society
series Physical Review X
issn 2160-3308
publishDate 2021-04-01
description The theory of quantum scarring—a remarkable violation of quantum unique ergodicity—rests on two complementary pillars: the existence of unstable classical periodic orbits and the so-called quasimodes, i.e., the nonergodic states that strongly overlap with a small number of the system’s eigenstates. Recently, interest in quantum scars has been revived in a many-body setting of Rydberg atom chains. While previous theoretical works have identified periodic orbits for such systems using time-dependent variational principle (TDVP), the link between periodic orbits and quasimodes has been missing. Here we provide a conceptually simple analytic construction of quasimodes for the nonintegrable Rydberg atom model and prove that they arise from a “requantization” of previously established periodic orbits when quantum fluctuations are restored to all orders. Our results shed light on the TDVP classical system simultaneously playing the role of both the mean-field approximation and the system’s classical limit, thus allowing us to firm up the analogy between the eigenstate scarring in the Rydberg atom chains and the single-particle quantum systems.
url http://doi.org/10.1103/PhysRevX.11.021021
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