Strong-coupling dynamics and entanglement in de Sitter space

Abstract We use holography to study the dynamics of a strongly-coupled gauge theory in four-dimensional de Sitter space with Hubble rate H. The gauge theory is non-conformal with a characteristic mass scale M. We solve Einstein’s equations numerically and determine the time evolution of homogeneous...

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Main Authors: Jorge Casalderrey-Solana, Christian Ecker, David Mateos, Wilke van der Schee
Format: Article
Language:English
Published: SpringerOpen 2021-03-01
Series:Journal of High Energy Physics
Subjects:
Online Access:https://doi.org/10.1007/JHEP03(2021)181
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spelling doaj-2b1e5abe564249b6bfa990abd66a94222021-03-21T12:07:46ZengSpringerOpenJournal of High Energy Physics1029-84792021-03-012021314610.1007/JHEP03(2021)181Strong-coupling dynamics and entanglement in de Sitter spaceJorge Casalderrey-Solana0Christian Ecker1David Mateos2Wilke van der Schee3Departament de Física Quàntica i Astrofísica and Institut de Ciències del Cosmos (ICC), Universitat de BarcelonaInstitut für Theoretische Physik, Goethe UniversitätDepartament de Física Quàntica i Astrofísica and Institut de Ciències del Cosmos (ICC), Universitat de BarcelonaTheoretical Physics Department, CERNAbstract We use holography to study the dynamics of a strongly-coupled gauge theory in four-dimensional de Sitter space with Hubble rate H. The gauge theory is non-conformal with a characteristic mass scale M. We solve Einstein’s equations numerically and determine the time evolution of homogeneous gauge theory states. If their initial energy density is high compared with H 4 then the early-time evolution is well described by viscous hydrodynamics with a non-zero bulk viscosity. At late times the dynamics is always far from equilibrium. The asymptotic late-time state preserves the full de Sitter symmetry group and its dual geometry is a domain-wall in AdS5. The approach to this state is characterised by an emergent relation of the form P $$ \mathcal{P} $$ = w ℰ that is different from the equilibrium equation of state in flat space. The constant w does not depend on the initial conditions but only on H/M and is negative if the ratio H/M is close to unity. The event and the apparent horizons of the late-time solution do not coincide with one another, reflecting its non-equilibrium nature. In between them lies an “entanglement horizon” that cannot be penetrated by extremal surfaces anchored at the boundary, which we use to compute the entanglement entropy of boundary regions. If the entangling region equals the observable universe then the extremal surface coincides with a bulk cosmological horizon that just touches the event horizon, while for larger regions the extremal surface probes behind the event horizon.https://doi.org/10.1007/JHEP03(2021)181Gauge-gravity correspondenceAdS-CFT CorrespondenceNonperturbative Effects
collection DOAJ
language English
format Article
sources DOAJ
author Jorge Casalderrey-Solana
Christian Ecker
David Mateos
Wilke van der Schee
spellingShingle Jorge Casalderrey-Solana
Christian Ecker
David Mateos
Wilke van der Schee
Strong-coupling dynamics and entanglement in de Sitter space
Journal of High Energy Physics
Gauge-gravity correspondence
AdS-CFT Correspondence
Nonperturbative Effects
author_facet Jorge Casalderrey-Solana
Christian Ecker
David Mateos
Wilke van der Schee
author_sort Jorge Casalderrey-Solana
title Strong-coupling dynamics and entanglement in de Sitter space
title_short Strong-coupling dynamics and entanglement in de Sitter space
title_full Strong-coupling dynamics and entanglement in de Sitter space
title_fullStr Strong-coupling dynamics and entanglement in de Sitter space
title_full_unstemmed Strong-coupling dynamics and entanglement in de Sitter space
title_sort strong-coupling dynamics and entanglement in de sitter space
publisher SpringerOpen
series Journal of High Energy Physics
issn 1029-8479
publishDate 2021-03-01
description Abstract We use holography to study the dynamics of a strongly-coupled gauge theory in four-dimensional de Sitter space with Hubble rate H. The gauge theory is non-conformal with a characteristic mass scale M. We solve Einstein’s equations numerically and determine the time evolution of homogeneous gauge theory states. If their initial energy density is high compared with H 4 then the early-time evolution is well described by viscous hydrodynamics with a non-zero bulk viscosity. At late times the dynamics is always far from equilibrium. The asymptotic late-time state preserves the full de Sitter symmetry group and its dual geometry is a domain-wall in AdS5. The approach to this state is characterised by an emergent relation of the form P $$ \mathcal{P} $$ = w ℰ that is different from the equilibrium equation of state in flat space. The constant w does not depend on the initial conditions but only on H/M and is negative if the ratio H/M is close to unity. The event and the apparent horizons of the late-time solution do not coincide with one another, reflecting its non-equilibrium nature. In between them lies an “entanglement horizon” that cannot be penetrated by extremal surfaces anchored at the boundary, which we use to compute the entanglement entropy of boundary regions. If the entangling region equals the observable universe then the extremal surface coincides with a bulk cosmological horizon that just touches the event horizon, while for larger regions the extremal surface probes behind the event horizon.
topic Gauge-gravity correspondence
AdS-CFT Correspondence
Nonperturbative Effects
url https://doi.org/10.1007/JHEP03(2021)181
work_keys_str_mv AT jorgecasalderreysolana strongcouplingdynamicsandentanglementindesitterspace
AT christianecker strongcouplingdynamicsandentanglementindesitterspace
AT davidmateos strongcouplingdynamicsandentanglementindesitterspace
AT wilkevanderschee strongcouplingdynamicsandentanglementindesitterspace
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