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Thermodynamics of SU(N) Yang-Mills theories in 2+1 dimensions II. The Deconfined phase
We present a non-perturbative study of the equation of state in the deconfined phase of Yang-Mills theories in D=2+1 dimensions. We introduce a holographic model, based on the improved holographic QCD model, from which we derive a non-trivial relation between the order of the deconfinement phase tra...
Autores principales: | , , , , , , |
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Lenguaje: | eng |
Publicado: |
2011
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Materias: | |
Acceso en línea: | https://dx.doi.org/10.1007/JHEP05(2012)135 http://cds.cern.ch/record/1395821 |
_version_ | 1780923520375586816 |
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author | Caselle, Michele Castagnini, Luca Feo, Alessandra Gliozzi, Ferdinando Gursoy, Umut Panero, Marco Schafer, Andreas |
author_facet | Caselle, Michele Castagnini, Luca Feo, Alessandra Gliozzi, Ferdinando Gursoy, Umut Panero, Marco Schafer, Andreas |
author_sort | Caselle, Michele |
collection | CERN |
description | We present a non-perturbative study of the equation of state in the deconfined phase of Yang-Mills theories in D=2+1 dimensions. We introduce a holographic model, based on the improved holographic QCD model, from which we derive a non-trivial relation between the order of the deconfinement phase transition and the behavior of the trace of the energy-momentum tensor as a function of the temperature T. We compare the theoretical predictions of this holographic model with a new set of high-precision numerical results from lattice simulations of SU(N) theories with N=2, 3, 4, 5 and 6 colors. The latter reveal that, similarly to the D=3+1 case, the bulk equilibrium thermodynamic quantities (pressure, trace of the energy-momentum tensor, energy density and entropy density) exhibit nearly perfect proportionality to the number of gluons, and can be successfully compared with the holographic predictions in a broad range of temperatures. Finally, we also show that, again similarly to the D=3+1 case, the trace of the energy-momentum tensor appears to be proportional to T^2 in a wide temperature range, starting from approximately 1.2 T_c, where T_c denotes the critical deconfinement temperature. |
id | cern-1395821 |
institution | Organización Europea para la Investigación Nuclear |
language | eng |
publishDate | 2011 |
record_format | invenio |
spelling | cern-13958212023-10-04T06:32:56Zdoi:10.1007/JHEP05(2012)135http://cds.cern.ch/record/1395821engCaselle, MicheleCastagnini, LucaFeo, AlessandraGliozzi, FerdinandoGursoy, UmutPanero, MarcoSchafer, AndreasThermodynamics of SU(N) Yang-Mills theories in 2+1 dimensions II. The Deconfined phaseParticle Physics - TheoryWe present a non-perturbative study of the equation of state in the deconfined phase of Yang-Mills theories in D=2+1 dimensions. We introduce a holographic model, based on the improved holographic QCD model, from which we derive a non-trivial relation between the order of the deconfinement phase transition and the behavior of the trace of the energy-momentum tensor as a function of the temperature T. We compare the theoretical predictions of this holographic model with a new set of high-precision numerical results from lattice simulations of SU(N) theories with N=2, 3, 4, 5 and 6 colors. The latter reveal that, similarly to the D=3+1 case, the bulk equilibrium thermodynamic quantities (pressure, trace of the energy-momentum tensor, energy density and entropy density) exhibit nearly perfect proportionality to the number of gluons, and can be successfully compared with the holographic predictions in a broad range of temperatures. Finally, we also show that, again similarly to the D=3+1 case, the trace of the energy-momentum tensor appears to be proportional to T^2 in a wide temperature range, starting from approximately 1.2 T_c, where T_c denotes the critical deconfinement temperature.We present a non-perturbative study of the equation of state in the deconfined phase of Yang-Mills theories in D=2+1 dimensions. We introduce a holographic model, based on the improved holographic QCD model, from which we derive a non-trivial relation between the order of the deconfinement phase transition and the behavior of the trace of the energy-momentum tensor as a function of the temperature T. We compare the theoretical predictions of this holographic model with a new set of high-precision numerical results from lattice simulations of SU(N) theories with N=2, 3, 4, 5 and 6 colors. The latter reveal that, similarly to the D=3+1 case, the bulk equilibrium thermodynamic quantities (pressure, trace of the energy-momentum tensor, energy density and entropy density) exhibit nearly perfect proportionality to the number of gluons, and can be successfully compared with the holographic predictions in a broad range of temperatures. Finally, we also show that, again similarly to the D=3+1 case, the trace of the energy-momentum tensor appears to be proportional to T^2 in a wide temperature range, starting from approximately 1.2 T_c, where T_c denotes the critical deconfinement temperature.arXiv:1111.0580DFTT-30-11CERN-PH-TH-2011-266HIP-2011-28-THDFTT-30-11CERN-PH-TH-2011-266HIP-2011-28-THoai:cds.cern.ch:13958212011-11-04 |
spellingShingle | Particle Physics - Theory Caselle, Michele Castagnini, Luca Feo, Alessandra Gliozzi, Ferdinando Gursoy, Umut Panero, Marco Schafer, Andreas Thermodynamics of SU(N) Yang-Mills theories in 2+1 dimensions II. The Deconfined phase |
title | Thermodynamics of SU(N) Yang-Mills theories in 2+1 dimensions II. The Deconfined phase |
title_full | Thermodynamics of SU(N) Yang-Mills theories in 2+1 dimensions II. The Deconfined phase |
title_fullStr | Thermodynamics of SU(N) Yang-Mills theories in 2+1 dimensions II. The Deconfined phase |
title_full_unstemmed | Thermodynamics of SU(N) Yang-Mills theories in 2+1 dimensions II. The Deconfined phase |
title_short | Thermodynamics of SU(N) Yang-Mills theories in 2+1 dimensions II. The Deconfined phase |
title_sort | thermodynamics of su(n) yang-mills theories in 2+1 dimensions ii. the deconfined phase |
topic | Particle Physics - Theory |
url | https://dx.doi.org/10.1007/JHEP05(2012)135 http://cds.cern.ch/record/1395821 |
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