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Probing non-Gaussian Stochastic Gravitational Wave Backgrounds with LISA

The stochastic gravitational wave background (SGWB) contains a wealth of information on astrophysical and cosmological processes. A major challenge of upcoming years will be to extract the information contained in this background and to disentangle the contributions of different sources. In this pap...

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Autores principales: Bartolo, Nicola, Domcke, Valerie, Figueroa, Daniel G., García-Bellido, Juan, Peloso, Marco, Pieroni, Mauro, Ricciardone, Angelo, Sakellariadou, Mairi, Sorbo, Lorenzo, Tasinato, Gianmassimo
Lenguaje:eng
Publicado: 2018
Materias:
Acceso en línea:https://dx.doi.org/10.1088/1475-7516/2018/11/034
http://cds.cern.ch/record/2622283
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author Bartolo, Nicola
Domcke, Valerie
Figueroa, Daniel G.
García-Bellido, Juan
Peloso, Marco
Pieroni, Mauro
Ricciardone, Angelo
Sakellariadou, Mairi
Sorbo, Lorenzo
Tasinato, Gianmassimo
author_facet Bartolo, Nicola
Domcke, Valerie
Figueroa, Daniel G.
García-Bellido, Juan
Peloso, Marco
Pieroni, Mauro
Ricciardone, Angelo
Sakellariadou, Mairi
Sorbo, Lorenzo
Tasinato, Gianmassimo
author_sort Bartolo, Nicola
collection CERN
description The stochastic gravitational wave background (SGWB) contains a wealth of information on astrophysical and cosmological processes. A major challenge of upcoming years will be to extract the information contained in this background and to disentangle the contributions of different sources. In this paper we provide the formalism to extract, from the correlation of three signals in the Laser Interferometer Space Antenna (LISA), information about the tensor three-point function, which characterizes the non-Gaussian properties of the SGWB . This observable can be crucial to discriminate whether a SGWB has a primordial or astrophysical origin. Compared to the two-point function, the SGWB three-point function has a richer dependence on the gravitational wave momenta and chiralities. It can be used therefore as a powerful discriminator between different models. For the first time we provide the response functions of LISA to a general SGWB three-point function. As examples, we study in full detail the cases of an equilateral and squeezed SGWB bispectra, and provide the explicit form of the response functions, ready to be convoluted with any theoretical prediction of the bispectrum to obtain the observable signal. We further derive the optimal estimator to compute the signal-to-noise ratio. Our formalism covers general shapes of non-Gaussianity, and can be extended straightaway to other detector geometries. Finally, we provide a short overview of models of the early universe that can give rise to a non-Gaussian SGWB.
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institution Organización Europea para la Investigación Nuclear
language eng
publishDate 2018
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spelling cern-26222832023-10-04T08:54:21Zdoi:10.1088/1475-7516/2018/11/034http://cds.cern.ch/record/2622283engBartolo, NicolaDomcke, ValerieFigueroa, Daniel G.García-Bellido, JuanPeloso, MarcoPieroni, MauroRicciardone, AngeloSakellariadou, MairiSorbo, LorenzoTasinato, GianmassimoProbing non-Gaussian Stochastic Gravitational Wave Backgrounds with LISAgr-qcGeneral Relativity and Cosmologyastro-ph.COAstrophysics and AstronomyThe stochastic gravitational wave background (SGWB) contains a wealth of information on astrophysical and cosmological processes. A major challenge of upcoming years will be to extract the information contained in this background and to disentangle the contributions of different sources. In this paper we provide the formalism to extract, from the correlation of three signals in the Laser Interferometer Space Antenna (LISA), information about the tensor three-point function, which characterizes the non-Gaussian properties of the SGWB . This observable can be crucial to discriminate whether a SGWB has a primordial or astrophysical origin. Compared to the two-point function, the SGWB three-point function has a richer dependence on the gravitational wave momenta and chiralities. It can be used therefore as a powerful discriminator between different models. For the first time we provide the response functions of LISA to a general SGWB three-point function. As examples, we study in full detail the cases of an equilateral and squeezed SGWB bispectra, and provide the explicit form of the response functions, ready to be convoluted with any theoretical prediction of the bispectrum to obtain the observable signal. We further derive the optimal estimator to compute the signal-to-noise ratio. Our formalism covers general shapes of non-Gaussianity, and can be extended straightaway to other detector geometries. Finally, we provide a short overview of models of the early universe that can give rise to a non-Gaussian SGWB.The stochastic gravitational wave background (SGWB) contains a wealth of information on astrophysical and cosmological processes. A major challenge of upcoming years will be to extract the information contained in this background and to disentangle the contributions of different sources. In this paper we provide the formalism to extract, from the correlation of three signals in the Laser Interferometer Space Antenna (LISA), information about the tensor three-point function, which characterizes the non-Gaussian properties of the SGWB. This observable can be crucial to discriminate whether a SGWB has a primordial or astrophysical origin. Compared to the two-point function, the SGWB three-point function has a richer dependence on the gravitational wave momenta and chiralities. It can be used therefore as a powerful discriminator between different models. For the first time we provide the response functions of LISA to a general SGWB three-point function. As examples, we study in full detail the cases of an equilateral and squeezed SGWB bispectra, and provide the explicit form of the response functions, ready to be convoluted with any theoretical prediction of the bispectrum to obtain the observable signal. We further derive the optimal estimator to compute the signal-to-noise ratio. Our formalism covers general shapes of non-Gaussianity, and can be extended straightaway to other detector geometries. Finally, we provide a short overview of models of the early universe that can give rise to a non-Gaussian SGWB.arXiv:1806.02819UMN-TH/3720-18CERN-TH-2018-130IFT-UAM/CSIC-18-58DESY 18-086KCL-PH-TH/2018-22ACFI-T18-08UMN-TH-3720-18IFT-UAM-CSIC-18-58DESY-18-086KCL-PH-TH-2018-22oai:cds.cern.ch:26222832018-06-07
spellingShingle gr-qc
General Relativity and Cosmology
astro-ph.CO
Astrophysics and Astronomy
Bartolo, Nicola
Domcke, Valerie
Figueroa, Daniel G.
García-Bellido, Juan
Peloso, Marco
Pieroni, Mauro
Ricciardone, Angelo
Sakellariadou, Mairi
Sorbo, Lorenzo
Tasinato, Gianmassimo
Probing non-Gaussian Stochastic Gravitational Wave Backgrounds with LISA
title Probing non-Gaussian Stochastic Gravitational Wave Backgrounds with LISA
title_full Probing non-Gaussian Stochastic Gravitational Wave Backgrounds with LISA
title_fullStr Probing non-Gaussian Stochastic Gravitational Wave Backgrounds with LISA
title_full_unstemmed Probing non-Gaussian Stochastic Gravitational Wave Backgrounds with LISA
title_short Probing non-Gaussian Stochastic Gravitational Wave Backgrounds with LISA
title_sort probing non-gaussian stochastic gravitational wave backgrounds with lisa
topic gr-qc
General Relativity and Cosmology
astro-ph.CO
Astrophysics and Astronomy
url https://dx.doi.org/10.1088/1475-7516/2018/11/034
http://cds.cern.ch/record/2622283
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