Non-equilibrium steady state formation in 3+1 dimensions

We present the first holographic simulations of non-equilibrium steady state formation in strongly coupled $\mathcal{N}=4$ SYM theory in 3+1 dimensions. We initially join together two thermal baths at different temperatures and chemical potentials and compare the subsequent evolution of the combi...

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Main Author: Christian Ecker, Johanna Erdmenger, Wilke van der Schee
Format: Article
Language:English
Published: SciPost 2021-09-01
Series:SciPost Physics
Online Access:https://scipost.org/SciPostPhys.11.3.047
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spelling doaj-317a2aec939a4184a010bd05210d53672021-09-01T09:15:51ZengSciPostSciPost Physics2542-46532021-09-0111304710.21468/SciPostPhys.11.3.047Non-equilibrium steady state formation in 3+1 dimensionsChristian Ecker, Johanna Erdmenger, Wilke van der ScheeWe present the first holographic simulations of non-equilibrium steady state formation in strongly coupled $\mathcal{N}=4$ SYM theory in 3+1 dimensions. We initially join together two thermal baths at different temperatures and chemical potentials and compare the subsequent evolution of the combined system to analytic solutions of the corresponding Riemann problem and to numeric solutions of ideal and viscous hydrodynamics. The time evolution of the energy density that we obtain holographically is consistent with the combination of a shock and a rarefaction wave: A shock wave moves towards the cold bath, and a smooth broadening wave towards the hot bath. Between the two waves emerges a steady state with constant temperature and flow velocity, both of which are accurately described by a shock+rarefaction wave solution of the Riemann problem. In the steady state region, a smooth crossover develops between two regions of different charge density. This is reminiscent of a contact discontinuity in the Riemann problem. We also obtain results for the entanglement entropy of regions crossed by shock and rarefaction waves and find both of them to closely follow the evolution of the energy density.https://scipost.org/SciPostPhys.11.3.047
collection DOAJ
language English
format Article
sources DOAJ
author Christian Ecker, Johanna Erdmenger, Wilke van der Schee
spellingShingle Christian Ecker, Johanna Erdmenger, Wilke van der Schee
Non-equilibrium steady state formation in 3+1 dimensions
SciPost Physics
author_facet Christian Ecker, Johanna Erdmenger, Wilke van der Schee
author_sort Christian Ecker, Johanna Erdmenger, Wilke van der Schee
title Non-equilibrium steady state formation in 3+1 dimensions
title_short Non-equilibrium steady state formation in 3+1 dimensions
title_full Non-equilibrium steady state formation in 3+1 dimensions
title_fullStr Non-equilibrium steady state formation in 3+1 dimensions
title_full_unstemmed Non-equilibrium steady state formation in 3+1 dimensions
title_sort non-equilibrium steady state formation in 3+1 dimensions
publisher SciPost
series SciPost Physics
issn 2542-4653
publishDate 2021-09-01
description We present the first holographic simulations of non-equilibrium steady state formation in strongly coupled $\mathcal{N}=4$ SYM theory in 3+1 dimensions. We initially join together two thermal baths at different temperatures and chemical potentials and compare the subsequent evolution of the combined system to analytic solutions of the corresponding Riemann problem and to numeric solutions of ideal and viscous hydrodynamics. The time evolution of the energy density that we obtain holographically is consistent with the combination of a shock and a rarefaction wave: A shock wave moves towards the cold bath, and a smooth broadening wave towards the hot bath. Between the two waves emerges a steady state with constant temperature and flow velocity, both of which are accurately described by a shock+rarefaction wave solution of the Riemann problem. In the steady state region, a smooth crossover develops between two regions of different charge density. This is reminiscent of a contact discontinuity in the Riemann problem. We also obtain results for the entanglement entropy of regions crossed by shock and rarefaction waves and find both of them to closely follow the evolution of the energy density.
url https://scipost.org/SciPostPhys.11.3.047
work_keys_str_mv AT christianeckerjohannaerdmengerwilkevanderschee nonequilibriumsteadystateformationin31dimensions
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