Collective excitations of massive flavor branes

We study the intersections of two sets of D-branes of different dimensionalities. This configuration is dual to a supersymmetric gauge theory with flavor hypermultiplets in the fundamental representation of the gauge group which live on the defect of the unflavored theory determined by the direction...

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Main Authors: Georgios Itsios, Niko Jokela, Alfonso V. Ramallo
Format: Article
Language:English
Published: Elsevier 2016-08-01
Series:Nuclear Physics B
Online Access:http://www.sciencedirect.com/science/article/pii/S055032131630150X
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spelling doaj-a0d888d1c2574e63bafa36a200866dab2020-11-24T20:59:07ZengElsevierNuclear Physics B0550-32131873-15622016-08-01909C67772410.1016/j.nuclphysb.2016.06.008Collective excitations of massive flavor branesGeorgios Itsios0Niko Jokela1Alfonso V. Ramallo2Department of Physics, University of Oviedo, Avda. Calvo Sotelo 18, 33007 Oviedo, SpainDepartment of Physics, FIN-00014 University of Helsinki, FinlandDepartamento de Física de Partículas, Universidade de Santiago de Compostela, E-15782 Santiago de Compostela, SpainWe study the intersections of two sets of D-branes of different dimensionalities. This configuration is dual to a supersymmetric gauge theory with flavor hypermultiplets in the fundamental representation of the gauge group which live on the defect of the unflavored theory determined by the directions common to the two types of branes. One set of branes is dual to the color degrees of freedom, while the other set adds flavor to the system. We work in the quenched approximation, i.e., where the flavor branes are considered as probes, and focus specifically on the case in which the quarks are massive. We study the thermodynamics and the speeds of first and zero sound at zero temperature and non-vanishing chemical potential. We show that the system undergoes a quantum phase transition when the chemical potential approaches its minimal value and we obtain the corresponding non-relativistic critical exponents that characterize its critical behavior. In the case of (2+1)-dimensional intersections, we further study alternative quantization and the zero sound of the resulting anyonic fluid. We finally extend these results to non-zero temperature and magnetic field and compute the diffusion constant in the hydrodynamic regime. The numerical results we find match the predictions by the Einstein relation.http://www.sciencedirect.com/science/article/pii/S055032131630150X
collection DOAJ
language English
format Article
sources DOAJ
author Georgios Itsios
Niko Jokela
Alfonso V. Ramallo
spellingShingle Georgios Itsios
Niko Jokela
Alfonso V. Ramallo
Collective excitations of massive flavor branes
Nuclear Physics B
author_facet Georgios Itsios
Niko Jokela
Alfonso V. Ramallo
author_sort Georgios Itsios
title Collective excitations of massive flavor branes
title_short Collective excitations of massive flavor branes
title_full Collective excitations of massive flavor branes
title_fullStr Collective excitations of massive flavor branes
title_full_unstemmed Collective excitations of massive flavor branes
title_sort collective excitations of massive flavor branes
publisher Elsevier
series Nuclear Physics B
issn 0550-3213
1873-1562
publishDate 2016-08-01
description We study the intersections of two sets of D-branes of different dimensionalities. This configuration is dual to a supersymmetric gauge theory with flavor hypermultiplets in the fundamental representation of the gauge group which live on the defect of the unflavored theory determined by the directions common to the two types of branes. One set of branes is dual to the color degrees of freedom, while the other set adds flavor to the system. We work in the quenched approximation, i.e., where the flavor branes are considered as probes, and focus specifically on the case in which the quarks are massive. We study the thermodynamics and the speeds of first and zero sound at zero temperature and non-vanishing chemical potential. We show that the system undergoes a quantum phase transition when the chemical potential approaches its minimal value and we obtain the corresponding non-relativistic critical exponents that characterize its critical behavior. In the case of (2+1)-dimensional intersections, we further study alternative quantization and the zero sound of the resulting anyonic fluid. We finally extend these results to non-zero temperature and magnetic field and compute the diffusion constant in the hydrodynamic regime. The numerical results we find match the predictions by the Einstein relation.
url http://www.sciencedirect.com/science/article/pii/S055032131630150X
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