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Cosmological Phase Transitions and Radius Stabilization in Higher Dimensions

Recently there has been considerable interest in field theories and string theories with large extra spacetime dimensions. In this paper, we explore the role of such extra dimensions for cosmology, focusing on cosmological phase transitions in field theory and the Hagedorn transition and radius stab...

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Detalles Bibliográficos
Autores principales: Dienes, Keith R., Dudas, E., Gherghetta, T., Riotto, A.
Lenguaje:eng
Publicado: 1998
Materias:
Acceso en línea:https://dx.doi.org/10.1016/S0550-3213(98)00855-4
http://cds.cern.ch/record/365240
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author Dienes, Keith R.
Dudas, E.
Gherghetta, T.
Riotto, A.
author_facet Dienes, Keith R.
Dudas, E.
Gherghetta, T.
Riotto, A.
author_sort Dienes, Keith R.
collection CERN
description Recently there has been considerable interest in field theories and string theories with large extra spacetime dimensions. In this paper, we explore the role of such extra dimensions for cosmology, focusing on cosmological phase transitions in field theory and the Hagedorn transition and radius stabilization in string theory. In each case, we find that significant distinctions emerge from the usual case in which such large extra dimensions are absent. For example, for temperatures larger than the scale of the compactification radii, we show that the critical temperature above which symmetry restoration occurs is reduced relative to the usual four-dimensional case, and consequently cosmological phase transitions in extra dimensions are delayed. Furthermore, we argue that if phase transitions do occur at temperatures larger than the compactification scale, then they cannot be of first-order type. Extending our analysis to string theories with large internal dimensions, we focus on the Hagedorn transition and the new features that arise due to the presence of large internal dimensions. We also consider the role of thermal effects in establishing a potential for the radius of the compactified dimension, and we use this to propose a thermal mechanism for generating and stabilizing a large radius of compactification.
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spelling cern-3652402023-10-04T08:18:02Zdoi:10.1016/S0550-3213(98)00855-4http://cds.cern.ch/record/365240engDienes, Keith R.Dudas, E.Gherghetta, T.Riotto, A.Cosmological Phase Transitions and Radius Stabilization in Higher DimensionsParticle Physics - PhenomenologyRecently there has been considerable interest in field theories and string theories with large extra spacetime dimensions. In this paper, we explore the role of such extra dimensions for cosmology, focusing on cosmological phase transitions in field theory and the Hagedorn transition and radius stabilization in string theory. In each case, we find that significant distinctions emerge from the usual case in which such large extra dimensions are absent. For example, for temperatures larger than the scale of the compactification radii, we show that the critical temperature above which symmetry restoration occurs is reduced relative to the usual four-dimensional case, and consequently cosmological phase transitions in extra dimensions are delayed. Furthermore, we argue that if phase transitions do occur at temperatures larger than the compactification scale, then they cannot be of first-order type. Extending our analysis to string theories with large internal dimensions, we focus on the Hagedorn transition and the new features that arise due to the presence of large internal dimensions. We also consider the role of thermal effects in establishing a potential for the radius of the compactified dimension, and we use this to propose a thermal mechanism for generating and stabilizing a large radius of compactification.Recently there has been considerable interest in field theories and string theories with large extra spacetime dimensions. In this paper, we explore the role of such extra dimensions for cosmology, focusing on cosmological phase transitions in field theory and the Hagedorn transition and radius stabilization in string theory. In each case, we find that significant distinctions emerge from the usual case in which such large extra dimensions are absent. For example, for temperatures larger than the scale of the compactification radii, we show that the critical temperature above which symmetry restoration occurs is reduced relative to the usual four-dimensional case, and consequently cosmological phase transitions in extra dimensions are delayed. Furthermore, we argue that if phase transitions do occur at temperatures larger than the compactification scale, then they cannot be of first-order type. Extending our analysis to string theories with large internal dimensions, we focus on the Hagedorn transition and the new features that arise due to the presence of large internal dimensions. We also consider the role of thermal effects in establishing a potential for the radius of the compactified dimension, and we use this to propose a thermal mechanism for generating and stabilizing a large radius of compactification.hep-ph/9809406CERN-TH-98-259LPTHE-ORSAY-98-56CERN-TH-98-259oai:cds.cern.ch:3652401998-09-16
spellingShingle Particle Physics - Phenomenology
Dienes, Keith R.
Dudas, E.
Gherghetta, T.
Riotto, A.
Cosmological Phase Transitions and Radius Stabilization in Higher Dimensions
title Cosmological Phase Transitions and Radius Stabilization in Higher Dimensions
title_full Cosmological Phase Transitions and Radius Stabilization in Higher Dimensions
title_fullStr Cosmological Phase Transitions and Radius Stabilization in Higher Dimensions
title_full_unstemmed Cosmological Phase Transitions and Radius Stabilization in Higher Dimensions
title_short Cosmological Phase Transitions and Radius Stabilization in Higher Dimensions
title_sort cosmological phase transitions and radius stabilization in higher dimensions
topic Particle Physics - Phenomenology
url https://dx.doi.org/10.1016/S0550-3213(98)00855-4
http://cds.cern.ch/record/365240
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