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Gravitational waves from self-ordering scalar fields

Gravitational waves were copiously produced in the early Universe whenever the processes taking place were sufficiently violent. The spectra of several of these gravitational wave backgrounds on subhorizon scales have been extensively studied in the literature. In this paper we analyze the shape and...

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Detalles Bibliográficos
Autores principales: Fenu, Elisa, Figueroa, Daniel G, Durrer, Ruth, Garcia-Bellido, Juan
Lenguaje:eng
Publicado: 2009
Materias:
Acceso en línea:https://dx.doi.org/10.1088/1475-7516/2009/10/005
http://cds.cern.ch/record/1197075
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author Fenu, Elisa
Figueroa, Daniel G
Durrer, Ruth
Garcia-Bellido, Juan
author_facet Fenu, Elisa
Figueroa, Daniel G
Durrer, Ruth
Garcia-Bellido, Juan
author_sort Fenu, Elisa
collection CERN
description Gravitational waves were copiously produced in the early Universe whenever the processes taking place were sufficiently violent. The spectra of several of these gravitational wave backgrounds on subhorizon scales have been extensively studied in the literature. In this paper we analyze the shape and amplitude of the gravitational wave spectrum on scales which are superhorizon at the time of production. Such gravitational waves are expected from the self ordering of randomly oriented scalar fields which can be present during a thermal phase transition or during preheating after hybrid inflation. We find that, if the gravitational wave source acts only during a small fraction of the Hubble time, the gravitational wave spectrum at frequencies lower than the expansion rate at the time of production behaves as $\Omega_{\rm GW}(f) \propto f^3$ with an amplitude much too small to be observable by gravitational wave observatories like LIGO, LISA or BBO. On the other hand, if the source is active for a much longer time, until a given mode which is initially superhorizon ($k\eta_* \ll 1$), enters the horizon, for $k\eta \gtrsim 1$, we find that the gravitational wave energy density is frequency independent, i.e. scale invariant. Moreover, its amplitude for a GUT scale scenario turns out to be within the range and sensitivity of BBO and marginally detectable by LIGO and LISA. This new gravitational wave background can compete with the one generated during inflation, and distinguishing both may require extra information.
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spelling cern-11970752019-09-30T06:29:59Zdoi:10.1088/1475-7516/2009/10/005http://cds.cern.ch/record/1197075engFenu, ElisaFigueroa, Daniel GDurrer, RuthGarcia-Bellido, JuanGravitational waves from self-ordering scalar fieldsAstrophysics and AstronomyGravitational waves were copiously produced in the early Universe whenever the processes taking place were sufficiently violent. The spectra of several of these gravitational wave backgrounds on subhorizon scales have been extensively studied in the literature. In this paper we analyze the shape and amplitude of the gravitational wave spectrum on scales which are superhorizon at the time of production. Such gravitational waves are expected from the self ordering of randomly oriented scalar fields which can be present during a thermal phase transition or during preheating after hybrid inflation. We find that, if the gravitational wave source acts only during a small fraction of the Hubble time, the gravitational wave spectrum at frequencies lower than the expansion rate at the time of production behaves as $\Omega_{\rm GW}(f) \propto f^3$ with an amplitude much too small to be observable by gravitational wave observatories like LIGO, LISA or BBO. On the other hand, if the source is active for a much longer time, until a given mode which is initially superhorizon ($k\eta_* \ll 1$), enters the horizon, for $k\eta \gtrsim 1$, we find that the gravitational wave energy density is frequency independent, i.e. scale invariant. Moreover, its amplitude for a GUT scale scenario turns out to be within the range and sensitivity of BBO and marginally detectable by LIGO and LISA. This new gravitational wave background can compete with the one generated during inflation, and distinguishing both may require extra information.arXiv:0908.0425IFT-UAM-CSIC-09-34CERN-PH-TH-2009-145oai:cds.cern.ch:11970752009-08-05
spellingShingle Astrophysics and Astronomy
Fenu, Elisa
Figueroa, Daniel G
Durrer, Ruth
Garcia-Bellido, Juan
Gravitational waves from self-ordering scalar fields
title Gravitational waves from self-ordering scalar fields
title_full Gravitational waves from self-ordering scalar fields
title_fullStr Gravitational waves from self-ordering scalar fields
title_full_unstemmed Gravitational waves from self-ordering scalar fields
title_short Gravitational waves from self-ordering scalar fields
title_sort gravitational waves from self-ordering scalar fields
topic Astrophysics and Astronomy
url https://dx.doi.org/10.1088/1475-7516/2009/10/005
http://cds.cern.ch/record/1197075
work_keys_str_mv AT fenuelisa gravitationalwavesfromselforderingscalarfields
AT figueroadanielg gravitationalwavesfromselforderingscalarfields
AT durrerruth gravitationalwavesfromselforderingscalarfields
AT garciabellidojuan gravitationalwavesfromselforderingscalarfields