Chaotic and quantum dynamics in driven-dissipative bosonic chains

Fuente: arXiv
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Main Authors: Ferrari, Filippo, Minganti, Fabrizio, Aron, Camille, Savona, Vincenzo
Format: Preprint
Published: 2024
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author Ferrari, Filippo
Minganti, Fabrizio
Aron, Camille
Savona, Vincenzo
author_facet Ferrari, Filippo
Minganti, Fabrizio
Aron, Camille
Savona, Vincenzo
contents Thermalization in quantum many-body systems typically unfolds over timescales governed by intrinsic relaxation mechanisms. Yet, its spatial aspect is less understood. We investigate this phenomenon in the nonequilibrium steady state (NESS) of a Bose-Hubbard chain subject to coherent driving and dissipation at its boundaries, a setup inspired by current designs in circuit quantum electrodynamics. The dynamical fingerprints of chaos in this NESS are probed using semiclassical out-of-time-order correlators (OTOCs) within the truncated Wigner approximation (TWA). At intermediate drive strengths, we uncover a two-stage thermalization along the spatial dimension: phase coherence is rapidly lost near the drive, while amplitude relaxation occurs over much longer distances. This separation of scales gives rise to an extended hydrodynamic regime exhibiting anomalous temperature profiles, which we designate as a ``prethermal'' domain. At stronger drives, the system enters a nonthermal, non-chaotic finite-momentum condensate characterized by sub-Poissonian photon statistics and a spatially modulated phase profile, whose stability is undermined by quantum fluctuations. We explore the conditions underlying this protracted thermalization in space and argue that similar mechanisms are likely to emerge in a broad class of extended driven-dissipative systems.
format Preprint
id arxiv_https___arxiv_org_abs_2409_12225
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Chaotic and quantum dynamics in driven-dissipative bosonic chains
Ferrari, Filippo
Minganti, Fabrizio
Aron, Camille
Savona, Vincenzo
Quantum Physics
Statistical Mechanics
Thermalization in quantum many-body systems typically unfolds over timescales governed by intrinsic relaxation mechanisms. Yet, its spatial aspect is less understood. We investigate this phenomenon in the nonequilibrium steady state (NESS) of a Bose-Hubbard chain subject to coherent driving and dissipation at its boundaries, a setup inspired by current designs in circuit quantum electrodynamics. The dynamical fingerprints of chaos in this NESS are probed using semiclassical out-of-time-order correlators (OTOCs) within the truncated Wigner approximation (TWA). At intermediate drive strengths, we uncover a two-stage thermalization along the spatial dimension: phase coherence is rapidly lost near the drive, while amplitude relaxation occurs over much longer distances. This separation of scales gives rise to an extended hydrodynamic regime exhibiting anomalous temperature profiles, which we designate as a ``prethermal'' domain. At stronger drives, the system enters a nonthermal, non-chaotic finite-momentum condensate characterized by sub-Poissonian photon statistics and a spatially modulated phase profile, whose stability is undermined by quantum fluctuations. We explore the conditions underlying this protracted thermalization in space and argue that similar mechanisms are likely to emerge in a broad class of extended driven-dissipative systems.
title Chaotic and quantum dynamics in driven-dissipative bosonic chains
topic Quantum Physics
Statistical Mechanics
url https://arxiv.org/abs/2409.12225