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Small field models of inflation that predict a tensor-to-scalar ratio $r=0.03$

Future observations of the cosmic microwave background polarization are expected to set an improved upper bound on the tensor-to-scalar ratio of r≲0.03. Recently, we showed that small field models of inflation can produce a significant primordial gravitational wave signal. We constructed viable smal...

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Detalles Bibliográficos
Autores principales: Wolfson, Ira, Brustein, Ram
Lenguaje:eng
Publicado: 2019
Materias:
Acceso en línea:https://dx.doi.org/10.1103/PhysRevD.100.043522
http://cds.cern.ch/record/2669551
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author Wolfson, Ira
Brustein, Ram
author_facet Wolfson, Ira
Brustein, Ram
author_sort Wolfson, Ira
collection CERN
description Future observations of the cosmic microwave background polarization are expected to set an improved upper bound on the tensor-to-scalar ratio of r≲0.03. Recently, we showed that small field models of inflation can produce a significant primordial gravitational wave signal. We constructed viable small field models that predict a value of r as high as 0.01. Models that predict higher values of r are more tightly constrained and lead to larger field excursions. This leads to an increase in tuning of the potential parameters and requires higher levels of error control in the numerical analysis. Here, we present viable small field models which predict r=0.03. We further find the most likely candidate among these models which fit the most recent Planck data while predicting r=0.03. We thus demonstrate that this class of small field models is an alternative to the class of large field models. The BICEP3 experiment and the Euclid and SPHEREx missions are expected to provide experimental evidence to support or refute our predictions.
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institution Organización Europea para la Investigación Nuclear
language eng
publishDate 2019
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spelling cern-26695512023-10-04T07:37:42Zdoi:10.1103/PhysRevD.100.043522http://cds.cern.ch/record/2669551engWolfson, IraBrustein, RamSmall field models of inflation that predict a tensor-to-scalar ratio $r=0.03$astro-ph.COAstrophysics and AstronomyFuture observations of the cosmic microwave background polarization are expected to set an improved upper bound on the tensor-to-scalar ratio of r≲0.03. Recently, we showed that small field models of inflation can produce a significant primordial gravitational wave signal. We constructed viable small field models that predict a value of r as high as 0.01. Models that predict higher values of r are more tightly constrained and lead to larger field excursions. This leads to an increase in tuning of the potential parameters and requires higher levels of error control in the numerical analysis. Here, we present viable small field models which predict r=0.03. We further find the most likely candidate among these models which fit the most recent Planck data while predicting r=0.03. We thus demonstrate that this class of small field models is an alternative to the class of large field models. The BICEP3 experiment and the Euclid and SPHEREx missions are expected to provide experimental evidence to support or refute our predictions.Future observations of the cosmic microwave background (CMB) polarization are expected to set an improved upper bound on the tensor-to-scalar ratio of $r\lesssim 0.03$. Recently, we showed that small field models of inflation can produce a significant primordial gravitational wave signal. We constructed viable small field models that predict a value of $r$ as high as $0.01$. Models that predict higher values of $r$ are more tightly constrained and lead to larger field excursions. This leads to an increase in tuning of the potential parameters and requires higher levels of error control in the numerical analysis. Here, we present viable small field models which predict $r=0.03$. We further find the most likely candidate among these models which fit the most recent Planck data while predicting $r= 0.03$. We thus demonstrate that this class of small field models is an alternative to the class of large field models. The BICEP3 experiment and the Euclid and SPHEREx missions are expected to provide experimental evidence to support or refute our predictions.arXiv:1903.11820CERN-TH-2019-037oai:cds.cern.ch:26695512019-03-28
spellingShingle astro-ph.CO
Astrophysics and Astronomy
Wolfson, Ira
Brustein, Ram
Small field models of inflation that predict a tensor-to-scalar ratio $r=0.03$
title Small field models of inflation that predict a tensor-to-scalar ratio $r=0.03$
title_full Small field models of inflation that predict a tensor-to-scalar ratio $r=0.03$
title_fullStr Small field models of inflation that predict a tensor-to-scalar ratio $r=0.03$
title_full_unstemmed Small field models of inflation that predict a tensor-to-scalar ratio $r=0.03$
title_short Small field models of inflation that predict a tensor-to-scalar ratio $r=0.03$
title_sort small field models of inflation that predict a tensor-to-scalar ratio $r=0.03$
topic astro-ph.CO
Astrophysics and Astronomy
url https://dx.doi.org/10.1103/PhysRevD.100.043522
http://cds.cern.ch/record/2669551
work_keys_str_mv AT wolfsonira smallfieldmodelsofinflationthatpredictatensortoscalarratior003
AT brusteinram smallfieldmodelsofinflationthatpredictatensortoscalarratior003