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Fluctuations from dissipation in a hot non-Abelian plasma

We consider a transport equation of the Boltzmann-Langevin type for non-Abelian plasmas close to equilibrium to derive the spectral functions of the underlying microscopic fluctuations from the entropy. The correlator of the stochastic source is obtained from the dissipative processes in the plasma....

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Detalles Bibliográficos
Autores principales: Litim, Daniel F., Manuel, Cristina
Lenguaje:eng
Publicado: 1999
Materias:
Acceso en línea:https://dx.doi.org/10.1103/PhysRevD.61.125004
http://cds.cern.ch/record/403766
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author Litim, Daniel F.
Manuel, Cristina
author_facet Litim, Daniel F.
Manuel, Cristina
author_sort Litim, Daniel F.
collection CERN
description We consider a transport equation of the Boltzmann-Langevin type for non-Abelian plasmas close to equilibrium to derive the spectral functions of the underlying microscopic fluctuations from the entropy. The correlator of the stochastic source is obtained from the dissipative processes in the plasma. This approach, based on classical transport theory, exploits the well-known link between a linearized collision integral, the entropy and the spectral functions. Applied to the ultra-soft modes of a hot non-Abelian (classical or quantum) plasma, the resulting spectral functions agree with earlier findings obtained from the microscopic theory. As a by-product, it follows that theorem.
id cern-403766
institution Organización Europea para la Investigación Nuclear
language eng
publishDate 1999
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spelling cern-4037662023-03-14T18:45:10Zdoi:10.1103/PhysRevD.61.125004http://cds.cern.ch/record/403766engLitim, Daniel F.Manuel, CristinaFluctuations from dissipation in a hot non-Abelian plasmaParticle Physics - PhenomenologyWe consider a transport equation of the Boltzmann-Langevin type for non-Abelian plasmas close to equilibrium to derive the spectral functions of the underlying microscopic fluctuations from the entropy. The correlator of the stochastic source is obtained from the dissipative processes in the plasma. This approach, based on classical transport theory, exploits the well-known link between a linearized collision integral, the entropy and the spectral functions. Applied to the ultra-soft modes of a hot non-Abelian (classical or quantum) plasma, the resulting spectral functions agree with earlier findings obtained from the microscopic theory. As a by-product, it follows that theorem.We consider a transport equation of the Boltzmann-Langevin type for non-Abelian plasmas close to equilibrium to derive the spectral functions of the underlying microscopic fluctuations from the entropy. The correlator of the stochastic source is obtained from the dissipative processes in the plasma. This approach, based on classical transport theory, exploits the well-known link between a linearized collision integral, the entropy and the spectral functions. Applied to the ultra-soft modes of a hot non-Abelian (classical or quantum) plasma, the resulting spectral functions agree with earlier findings obtained from the microscopic theory. As a by-product, it follows that B\"odeker's effective theory is consistent with the fluctuation-dissipation theorem.hep-ph/9910348CERN-TH-99-309HD-THEP-99-47CERN-TH-99-309HD-THEP-99-47oai:cds.cern.ch:4037661999-10-15
spellingShingle Particle Physics - Phenomenology
Litim, Daniel F.
Manuel, Cristina
Fluctuations from dissipation in a hot non-Abelian plasma
title Fluctuations from dissipation in a hot non-Abelian plasma
title_full Fluctuations from dissipation in a hot non-Abelian plasma
title_fullStr Fluctuations from dissipation in a hot non-Abelian plasma
title_full_unstemmed Fluctuations from dissipation in a hot non-Abelian plasma
title_short Fluctuations from dissipation in a hot non-Abelian plasma
title_sort fluctuations from dissipation in a hot non-abelian plasma
topic Particle Physics - Phenomenology
url https://dx.doi.org/10.1103/PhysRevD.61.125004
http://cds.cern.ch/record/403766
work_keys_str_mv AT litimdanielf fluctuationsfromdissipationinahotnonabelianplasma
AT manuelcristina fluctuationsfromdissipationinahotnonabelianplasma