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Cosmological constraints on deviations from Lorentz invariance in gravity and dark matter

We consider a scenario where local Lorentz invariance is violated by the existence of a preferred time direction at every space-time point. This scenario can arise in the context of quantum gravity and its description at low energies contains a unit time-like vector field which parameterizes the pre...

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Detalles Bibliográficos
Autores principales: Audren, B., Blas, D., Ivanov, M.M., Lesgourgues, J., Sibiryakov, S.
Lenguaje:eng
Publicado: 2014
Materias:
Acceso en línea:https://dx.doi.org/10.1088/1475-7516/2015/03/016
http://cds.cern.ch/record/1957430
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author Audren, B.
Blas, D.
Ivanov, M.M.
Lesgourgues, J.
Sibiryakov, S.
author_facet Audren, B.
Blas, D.
Ivanov, M.M.
Lesgourgues, J.
Sibiryakov, S.
author_sort Audren, B.
collection CERN
description We consider a scenario where local Lorentz invariance is violated by the existence of a preferred time direction at every space-time point. This scenario can arise in the context of quantum gravity and its description at low energies contains a unit time-like vector field which parameterizes the preferred direction. The particle physics tests of Lorentz invariance preclude a direct coupling of this vector to the fields of the Standard Model, but do not bear implications for dark matter. We discuss how the presence of this vector and its possible coupling to dark matter affect the evolution of the Universe. At the level of homogeneous cosmology the only effect of Lorentz invariance violation is a rescaling of the expansion rate. The physics is richer at the level of perturbations. We identify three effects crucial for observations: the rescaling of the matter contribution to the Poisson equation, the appearance of an extra contribution to the anisotropic stress and the scale-dependent enhancement of dark matter clustering. These effects result in distinctive features in the power spectra of the CMB and density fluctuations. Making use of the data from Planck and WiggleZ we obtain the most stringent cosmological constraints to date on departures from Lorentz symmetry. Our analysis provides the first direct bounds on deviations from Lorentz invariance in the dark matter sector.
id cern-1957430
institution Organización Europea para la Investigación Nuclear
language eng
publishDate 2014
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spelling cern-19574302023-10-04T06:55:19Zdoi:10.1088/1475-7516/2015/03/016http://cds.cern.ch/record/1957430engAudren, B.Blas, D.Ivanov, M.M.Lesgourgues, J.Sibiryakov, S.Cosmological constraints on deviations from Lorentz invariance in gravity and dark matterAstrophysics and AstronomyWe consider a scenario where local Lorentz invariance is violated by the existence of a preferred time direction at every space-time point. This scenario can arise in the context of quantum gravity and its description at low energies contains a unit time-like vector field which parameterizes the preferred direction. The particle physics tests of Lorentz invariance preclude a direct coupling of this vector to the fields of the Standard Model, but do not bear implications for dark matter. We discuss how the presence of this vector and its possible coupling to dark matter affect the evolution of the Universe. At the level of homogeneous cosmology the only effect of Lorentz invariance violation is a rescaling of the expansion rate. The physics is richer at the level of perturbations. We identify three effects crucial for observations: the rescaling of the matter contribution to the Poisson equation, the appearance of an extra contribution to the anisotropic stress and the scale-dependent enhancement of dark matter clustering. These effects result in distinctive features in the power spectra of the CMB and density fluctuations. Making use of the data from Planck and WiggleZ we obtain the most stringent cosmological constraints to date on departures from Lorentz symmetry. Our analysis provides the first direct bounds on deviations from Lorentz invariance in the dark matter sector.We consider a scenario where local Lorentz invariance is violated by the existence of a preferred time direction at every space-time point. This scenario can arise in the context of quantum gravity and its description at low energies contains a unit time-like vector field which parameterizes the preferred direction. The particle physics tests of Lorentz invariance preclude a direct coupling of this vector to the fields of the Standard Model, but do not bear implications for dark matter. We discuss how the presence of this vector and its possible coupling to dark matter affect the evolution of the Universe. At the level of homogeneous cosmology the only effect of Lorentz invariance violation is a rescaling of the expansion rate. The physics is richer at the level of perturbations. We identify three effects crucial for observations: the rescaling of the matter contribution to the Poisson equation, the appearance of an extra contribution to the anisotropic stress and the scale-dependent enhancement of dark matter clustering. These effects result in distinctive features in the power spectra of the CMB and density fluctuations. Making use of the data from Planck and WiggleZ we obtain the most stringent cosmological constraints to date on departures from Lorentz symmetry. Our analysis provides the first direct bounds on deviations from Lorentz invariance in the dark matter sector.We consider a scenario where local Lorentz invariance is violated by the existence of a preferred time direction at every space-time point. This scenario can arise in the context of quantum gravity and its description at low energies contains a unit time-like vector field which parameterizes the preferred direction. The particle physics tests of Lorentz invariance preclude a direct coupling of this vector to the fields of the Standard Model, but do not bear implications for dark matter. We discuss how the presence of this vector and its possible coupling to dark matter affect the evolution of the Universe. At the level of homogeneous cosmology the only effect of Lorentz invariance violation is a rescaling of the expansion rate. The physics is richer at the level of perturbations. We identify three effects crucial for observations: the rescaling of the matter contribution to the Poisson equation, the appearance of an extra contribution to the anisotropic stress and the scale-dependent enhancement of dark matter clustering. These effects result in distinctive features in the power spectra of the CMB and density fluctuations. Making use of the data from Planck and WiggleZ we obtain the most stringent cosmological constraints to date on departures from Lorentz symmetry. Our analysis provides the first direct bounds on deviations from Lorentz invariance in the dark matter sector.arXiv:1410.6514CERN-PH-TH-2014-196INR-TH-2014-024LAPTH-225-14CERN-PH-TH-2014-196INR-TH-2014-024LAPTH-225-14oai:cds.cern.ch:19574302014-10-23
spellingShingle Astrophysics and Astronomy
Audren, B.
Blas, D.
Ivanov, M.M.
Lesgourgues, J.
Sibiryakov, S.
Cosmological constraints on deviations from Lorentz invariance in gravity and dark matter
title Cosmological constraints on deviations from Lorentz invariance in gravity and dark matter
title_full Cosmological constraints on deviations from Lorentz invariance in gravity and dark matter
title_fullStr Cosmological constraints on deviations from Lorentz invariance in gravity and dark matter
title_full_unstemmed Cosmological constraints on deviations from Lorentz invariance in gravity and dark matter
title_short Cosmological constraints on deviations from Lorentz invariance in gravity and dark matter
title_sort cosmological constraints on deviations from lorentz invariance in gravity and dark matter
topic Astrophysics and Astronomy
url https://dx.doi.org/10.1088/1475-7516/2015/03/016
http://cds.cern.ch/record/1957430
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