From Classical Stochastic to Monitored Quantum Dynamics: Dynamical Phase Coexistence in East Circuit Models

Fuente: arXiv
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Hauptverfasser: Cech, Marcel, Buisson, Johan du, De Fazio, Cecilia, Carollo, Federico, Lesanovsky, Igor
Format: Preprint
Veröffentlicht: 2026
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author Cech, Marcel
Buisson, Johan du
De Fazio, Cecilia
Carollo, Federico
Lesanovsky, Igor
author_facet Cech, Marcel
Buisson, Johan du
De Fazio, Cecilia
Carollo, Federico
Lesanovsky, Igor
contents Kinetically constrained models have been widely studied in the context of glass formers and non-equilibrium statistical mechanics. Although their simple local rules often result in structureless static properties, their dynamics exhibit intricate emergent phenomena. In this work, we investigate monitored quantum circuit models that interpolate between classical stochastic and unitary quantum dynamics. For any finite measurement strength, the measurement records provide an experimentally accessible probe of the emergence of dynamical phases. By interpreting space-time resolved records as microstates of a fictitious 1+1D spin system, we employ thermodynamic concepts that allow us to investigate the dynamical coexistence between an active and inactive phase. We combine insights from classical stochastic dynamics and numerical simulations of monitored quantum dynamics to investigate different signatures of this dynamical phase coexistence as the measurement strength is varied. Our results shed light on the persistence of dynamical phase coexistence in the quantum regime, offering insights into future experimental studies of complex many-body dynamics in quantum simulators.
format Preprint
id arxiv_https___arxiv_org_abs_2603_18227
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle From Classical Stochastic to Monitored Quantum Dynamics: Dynamical Phase Coexistence in East Circuit Models
Cech, Marcel
Buisson, Johan du
De Fazio, Cecilia
Carollo, Federico
Lesanovsky, Igor
Quantum Physics
Statistical Mechanics
Kinetically constrained models have been widely studied in the context of glass formers and non-equilibrium statistical mechanics. Although their simple local rules often result in structureless static properties, their dynamics exhibit intricate emergent phenomena. In this work, we investigate monitored quantum circuit models that interpolate between classical stochastic and unitary quantum dynamics. For any finite measurement strength, the measurement records provide an experimentally accessible probe of the emergence of dynamical phases. By interpreting space-time resolved records as microstates of a fictitious 1+1D spin system, we employ thermodynamic concepts that allow us to investigate the dynamical coexistence between an active and inactive phase. We combine insights from classical stochastic dynamics and numerical simulations of monitored quantum dynamics to investigate different signatures of this dynamical phase coexistence as the measurement strength is varied. Our results shed light on the persistence of dynamical phase coexistence in the quantum regime, offering insights into future experimental studies of complex many-body dynamics in quantum simulators.
title From Classical Stochastic to Monitored Quantum Dynamics: Dynamical Phase Coexistence in East Circuit Models
topic Quantum Physics
Statistical Mechanics
url https://arxiv.org/abs/2603.18227