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Anisotropies and non-Gaussianity of the Cosmological Gravitational Wave Background
The stochastic gravitational wave background (SGWB) is expected to be a key observable for gravitational wave (GW) interferometry. Its detection will open a new window to early Universe cosmology and to the astrophysics of compact objects. Using a Boltzmann approach, we study the angular anisotropie...
Autores principales: | , , , , , , |
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Lenguaje: | eng |
Publicado: |
2019
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Materias: | |
Acceso en línea: | https://dx.doi.org/10.1103/PhysRevD.100.121501 http://cds.cern.ch/record/2698530 |
_version_ | 1780964304495837184 |
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author | Bartolo, N. Bertacca, D. Matarrese, S. Peloso, M. Ricciardone, A. Riotto, A. Tasinato, G. |
author_facet | Bartolo, N. Bertacca, D. Matarrese, S. Peloso, M. Ricciardone, A. Riotto, A. Tasinato, G. |
author_sort | Bartolo, N. |
collection | CERN |
description | The stochastic gravitational wave background (SGWB) is expected to be a key observable for gravitational wave (GW) interferometry. Its detection will open a new window to early Universe cosmology and to the astrophysics of compact objects. Using a Boltzmann approach, we study the angular anisotropies of the GW energy density, which is an important tool to disentangle the different cosmological and astrophysical contributions to the SGWB. Anisotropies in the cosmological background are imprinted both at its production and by GW propagation through the large-scale scalar and tensor perturbations of the Universe. The first contribution is not present in the cosmic microwave background radiation (as the Universe is not transparent to photons before recombination), causing an order 1 dependence of the anisotropies on frequency. Moreover, we provide a new method to characterize the cosmological SGWB through its possible deviation from Gaussian statistics. In particular, the SGWB will become a new probe of the primordial non-Gaussianity of the large-scale cosmological perturbations. |
id | cern-2698530 |
institution | Organización Europea para la Investigación Nuclear |
language | eng |
publishDate | 2019 |
record_format | invenio |
spelling | cern-26985302021-02-27T04:35:06Zdoi:10.1103/PhysRevD.100.121501http://cds.cern.ch/record/2698530engBartolo, N.Bertacca, D.Matarrese, S.Peloso, M.Ricciardone, A.Riotto, A.Tasinato, G.Anisotropies and non-Gaussianity of the Cosmological Gravitational Wave Backgroundhep-thParticle Physics - Theoryhep-phParticle Physics - Phenomenologygr-qcGeneral Relativity and Cosmologyastro-ph.COAstrophysics and AstronomyThe stochastic gravitational wave background (SGWB) is expected to be a key observable for gravitational wave (GW) interferometry. Its detection will open a new window to early Universe cosmology and to the astrophysics of compact objects. Using a Boltzmann approach, we study the angular anisotropies of the GW energy density, which is an important tool to disentangle the different cosmological and astrophysical contributions to the SGWB. Anisotropies in the cosmological background are imprinted both at its production and by GW propagation through the large-scale scalar and tensor perturbations of the Universe. The first contribution is not present in the cosmic microwave background radiation (as the Universe is not transparent to photons before recombination), causing an order 1 dependence of the anisotropies on frequency. Moreover, we provide a new method to characterize the cosmological SGWB through its possible deviation from Gaussian statistics. In particular, the SGWB will become a new probe of the primordial non-Gaussianity of the large-scale cosmological perturbations.The Stochastic Gravitational Wave Background (SGWB) is expected to be a key observable for Gravitational Wave (GW) interferometry. Its detection will open a new window on early universe cosmology and on the astrophysics of compact objects. Using a Boltzmann approach, we study the angular anisotropies of the GW energy density, which is an important tool to disentangle the different cosmological and astrophysical contributions to the SGWB. Anisotropies in the cosmological background are imprinted both at its production, and by GW propagation through the large-scale scalar and tensor perturbations of the universe. The first contribution is not present in the Cosmic Microwave Background (CMB) radiation (as the universe is not transparent to photons before recombination), causing an order one dependence of the anisotropies on frequency. Moreover, we provide a new method to characterize the cosmological SGWB through its possible deviation from a Gaussian statistics. In particular, the SGWB will become a new probe of the primordial non-Gaussianity of the large-scale cosmological perturbations.arXiv:1908.00527oai:cds.cern.ch:26985302019-08-01 |
spellingShingle | hep-th Particle Physics - Theory hep-ph Particle Physics - Phenomenology gr-qc General Relativity and Cosmology astro-ph.CO Astrophysics and Astronomy Bartolo, N. Bertacca, D. Matarrese, S. Peloso, M. Ricciardone, A. Riotto, A. Tasinato, G. Anisotropies and non-Gaussianity of the Cosmological Gravitational Wave Background |
title | Anisotropies and non-Gaussianity of the Cosmological Gravitational Wave Background |
title_full | Anisotropies and non-Gaussianity of the Cosmological Gravitational Wave Background |
title_fullStr | Anisotropies and non-Gaussianity of the Cosmological Gravitational Wave Background |
title_full_unstemmed | Anisotropies and non-Gaussianity of the Cosmological Gravitational Wave Background |
title_short | Anisotropies and non-Gaussianity of the Cosmological Gravitational Wave Background |
title_sort | anisotropies and non-gaussianity of the cosmological gravitational wave background |
topic | hep-th Particle Physics - Theory hep-ph Particle Physics - Phenomenology gr-qc General Relativity and Cosmology astro-ph.CO Astrophysics and Astronomy |
url | https://dx.doi.org/10.1103/PhysRevD.100.121501 http://cds.cern.ch/record/2698530 |
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