Reheating constraints to modulus mass for single field inflationary models
We consider string and supergravity motivated scenarios in which moduli fields dominate the energy density of the Universe in a post-inflationary epoch. For the case of a single light modulus it has been shown that considering the evolution of a specific scale from the time of its Hubble crossing du...
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doaj-18eb3dabfb104f7f9e5a84a0892cc5712020-11-25T03:56:48ZengElsevierNuclear Physics B0550-32132020-11-01960115211Reheating constraints to modulus mass for single field inflationary modelsRajesh Goswami0Urjit A. Yajnik1Corresponding author.; Department of Physics, Indian Institute of Technology Bombay, Mumbai-400076, IndiaDepartment of Physics, Indian Institute of Technology Bombay, Mumbai-400076, IndiaWe consider string and supergravity motivated scenarios in which moduli fields dominate the energy density of the Universe in a post-inflationary epoch. For the case of a single light modulus it has been shown that considering the evolution of a specific scale from the time of its Hubble crossing during inflation to the present time, a relation can be obtained among the lightest modulus mass, the reheating parameters (Treh, w¯reh and Nreh) and the inflationary observables. By paying closer attention to the role of the w¯reh, we obtain more stringent constraints on the value of the modulus mass and the reheating parameters using the CMB data. Next, the analysis is extended to include features in the inflaton potential as a source of CMB low multipole anomalies, which further constrains the mass of the modulus to be substantially higher than without such a constraint. By both considerations and for several inflation models considered, we find a constraint on the mass of the lightest modulus particle, mχ, generically ≳1015 GeV, with possible low values ∼1012 GeV. While a simplification of the reheating phase is assumed, the bounds are reliably suggestive, and the study may be taken as a demonstration that substantial knowledge about reheating phase buried deep in the early epochs of the Universe is accessible through the use of CMB observables today.http://www.sciencedirect.com/science/article/pii/S0550321320302960 |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Rajesh Goswami Urjit A. Yajnik |
spellingShingle |
Rajesh Goswami Urjit A. Yajnik Reheating constraints to modulus mass for single field inflationary models Nuclear Physics B |
author_facet |
Rajesh Goswami Urjit A. Yajnik |
author_sort |
Rajesh Goswami |
title |
Reheating constraints to modulus mass for single field inflationary models |
title_short |
Reheating constraints to modulus mass for single field inflationary models |
title_full |
Reheating constraints to modulus mass for single field inflationary models |
title_fullStr |
Reheating constraints to modulus mass for single field inflationary models |
title_full_unstemmed |
Reheating constraints to modulus mass for single field inflationary models |
title_sort |
reheating constraints to modulus mass for single field inflationary models |
publisher |
Elsevier |
series |
Nuclear Physics B |
issn |
0550-3213 |
publishDate |
2020-11-01 |
description |
We consider string and supergravity motivated scenarios in which moduli fields dominate the energy density of the Universe in a post-inflationary epoch. For the case of a single light modulus it has been shown that considering the evolution of a specific scale from the time of its Hubble crossing during inflation to the present time, a relation can be obtained among the lightest modulus mass, the reheating parameters (Treh, w¯reh and Nreh) and the inflationary observables. By paying closer attention to the role of the w¯reh, we obtain more stringent constraints on the value of the modulus mass and the reheating parameters using the CMB data. Next, the analysis is extended to include features in the inflaton potential as a source of CMB low multipole anomalies, which further constrains the mass of the modulus to be substantially higher than without such a constraint. By both considerations and for several inflation models considered, we find a constraint on the mass of the lightest modulus particle, mχ, generically ≳1015 GeV, with possible low values ∼1012 GeV. While a simplification of the reheating phase is assumed, the bounds are reliably suggestive, and the study may be taken as a demonstration that substantial knowledge about reheating phase buried deep in the early epochs of the Universe is accessible through the use of CMB observables today. |
url |
http://www.sciencedirect.com/science/article/pii/S0550321320302960 |
work_keys_str_mv |
AT rajeshgoswami reheatingconstraintstomodulusmassforsinglefieldinflationarymodels AT urjitayajnik reheatingconstraintstomodulusmassforsinglefieldinflationarymodels |
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1724463718157254656 |