Genuine quantum scars in Floquet chaotic many-body systems

Fuente: arXiv
Saved in:
Bibliographic Details
Main Authors: Schmid, Harald, Pizzi, Andrea, Knolle, Johannes
Format: Preprint
Published: 2026
Subjects:
Online Access:
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1866914473416065024
author Schmid, Harald
Pizzi, Andrea
Knolle, Johannes
author_facet Schmid, Harald
Pizzi, Andrea
Knolle, Johannes
contents Unstable periodic orbits act as organizing structures for classical chaotic systems and underpin quantum scarring. Long known in single-particle systems, genuine quantum scars based on unstable periodic orbits have been recently extended to isolated many-body systems for time-independent Hamiltonians. Their fate under periodic driving, however, remains largely uncharted, challenged by the expectation that these systems should in general heat to infinite temperature. Here, we investigate how genuine scarring competes with the drive in a Floquet many-body system. Using chaotic spin chains, we demonstrate that Floquet states remain scarred in the high-frequency limit. Beyond this static correspondence, we uncover additional, driving-induced Floquet scars with no static analog. We construct a rich dynamical stability diagram with intermediate-frequency regimes of enhanced and quenched scarring, which we understand with a classical analysis of the Lyapunov exponent. Our results position Floquet systems as a natural platform for tuning the scarring behavior of quantum many-body systems.
format Preprint
id arxiv_https___arxiv_org_abs_2604_13164
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Genuine quantum scars in Floquet chaotic many-body systems
Schmid, Harald
Pizzi, Andrea
Knolle, Johannes
Statistical Mechanics
Quantum Physics
Unstable periodic orbits act as organizing structures for classical chaotic systems and underpin quantum scarring. Long known in single-particle systems, genuine quantum scars based on unstable periodic orbits have been recently extended to isolated many-body systems for time-independent Hamiltonians. Their fate under periodic driving, however, remains largely uncharted, challenged by the expectation that these systems should in general heat to infinite temperature. Here, we investigate how genuine scarring competes with the drive in a Floquet many-body system. Using chaotic spin chains, we demonstrate that Floquet states remain scarred in the high-frequency limit. Beyond this static correspondence, we uncover additional, driving-induced Floquet scars with no static analog. We construct a rich dynamical stability diagram with intermediate-frequency regimes of enhanced and quenched scarring, which we understand with a classical analysis of the Lyapunov exponent. Our results position Floquet systems as a natural platform for tuning the scarring behavior of quantum many-body systems.
title Genuine quantum scars in Floquet chaotic many-body systems
topic Statistical Mechanics
Quantum Physics
url https://arxiv.org/abs/2604.13164