Universal dynamics from a single-particle dark state

Fuente: arXiv
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Autori principali: Daraban, Ruben, Safavi-Naini, Arghavan, Schachenmayer, Johannes, Maghrebi, Mohammad
Natura: Preprint
Pubblicazione: 2026
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author Daraban, Ruben
Safavi-Naini, Arghavan
Schachenmayer, Johannes
Maghrebi, Mohammad
author_facet Daraban, Ruben
Safavi-Naini, Arghavan
Schachenmayer, Johannes
Maghrebi, Mohammad
contents Open quantum systems can host dark or subradiant states whose decay is highly suppressed. While these states have been extensively studied in the few-excitation regime, their impact on the many-body dynamics remains largely unexplored. Here, we study a spin chain subject to correlated dissipation on neighboring sites, which admits a single-particle dark state at zero momentum. We show that the single-particle dark state qualitatively alters the many-body dynamics at long times, and identify its distinct universal behavior. While the zero-momentum mode is dark at the single-particle level, it decays slowly as $1/\log t$ as it becomes dressed by other modes through a dissipation-induced nonlinearity. We demonstrate that the momentum distribution takes a universal scaling form in $k\sqrt{t}$, and the total density decays as $1/\sqrt{t}\log t$. Our results further elucidate the origin of the conflicting results in recent works. Finally, we corroborate the analytics with matrix product state simulations and show that the same universal behavior persists for soft-core interactions, underscoring the universality of the emergent dynamics.
format Preprint
id arxiv_https___arxiv_org_abs_2605_16494
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Universal dynamics from a single-particle dark state
Daraban, Ruben
Safavi-Naini, Arghavan
Schachenmayer, Johannes
Maghrebi, Mohammad
Quantum Gases
Statistical Mechanics
Quantum Physics
Open quantum systems can host dark or subradiant states whose decay is highly suppressed. While these states have been extensively studied in the few-excitation regime, their impact on the many-body dynamics remains largely unexplored. Here, we study a spin chain subject to correlated dissipation on neighboring sites, which admits a single-particle dark state at zero momentum. We show that the single-particle dark state qualitatively alters the many-body dynamics at long times, and identify its distinct universal behavior. While the zero-momentum mode is dark at the single-particle level, it decays slowly as $1/\log t$ as it becomes dressed by other modes through a dissipation-induced nonlinearity. We demonstrate that the momentum distribution takes a universal scaling form in $k\sqrt{t}$, and the total density decays as $1/\sqrt{t}\log t$. Our results further elucidate the origin of the conflicting results in recent works. Finally, we corroborate the analytics with matrix product state simulations and show that the same universal behavior persists for soft-core interactions, underscoring the universality of the emergent dynamics.
title Universal dynamics from a single-particle dark state
topic Quantum Gases
Statistical Mechanics
Quantum Physics
url https://arxiv.org/abs/2605.16494