Primordial black holes and scalar-induced gravitational waves in sneutrino hybrid inflation
Primordial black holes and scalar-induced gravitational waves in sneutrino hybrid inflation
We investigate the possibility that primordial black holes (PBHs) can be formed from large curvature perturbations generated during the waterfall phase transition in a supersymmetric scenario where sneutrino is the inflaton in a hybrid inflationary framework. We obtain a spectral index (ns≃0.966), and a tensor-to-scalar ratio (r≃0.0056−10−11), consistent with the current Planck data satisfying PBH as dark matter (DM) and detectable Gravitational Wave (GW) signal. Our findings show that the mass of PBH and the peak in the GW spectrum is correlated with the right-handed (s)neutrino mass. We identify parameter space where PBHs can be the entire DM candidate of the universe (with mass 10−13M⊙) or a fraction of it. This can be tested in future observatories, for example, with amplitude ΩGWh2 ∼10−9 and peak frequency f∼0.1 Hz in LISA and ΩGWh2∼10−11 and peak frequency of ∼10 Hz in ET via second-order GW signals. We study two models of sneutrino inflation: Model−1 involves canonical sneutrino kinetic term which predicts the sub-Planckian mass parameter M, while the coupling between a gauge singlet and the waterfall field, β, needs to be quite large whereas, for the model−2 involving α−attractor canonical sneutrino kinetic term, β can take a natural value. Estimating explicitly, we show that both models have mild fine-tuning. We also derive an analytical expression for the power spectrum in terms of the microphysics parameters of the model like (s)neutrino mass, etc. that fits well with the numerical results. The typical reheat temperature for both the models is around 107−108~GeV suitable for non-thermal leptogenesis.
astro-ph.CO, hep-ph, hep-th
Afzal, Adeela
bddc500d-2d69-4076-8b08-9614c41f45fc
Ghoshal, Anish
61e009c4-becc-4864-a59d-e5a52820afe9
King, Stephen F.
f8c616b7-0336-4046-a943-700af83a1538
Afzal, Adeela
bddc500d-2d69-4076-8b08-9614c41f45fc
Ghoshal, Anish
61e009c4-becc-4864-a59d-e5a52820afe9
King, Stephen F.
f8c616b7-0336-4046-a943-700af83a1538
[Unknown type: UNSPECIFIED]
Abstract
We investigate the possibility that primordial black holes (PBHs) can be formed from large curvature perturbations generated during the waterfall phase transition in a supersymmetric scenario where sneutrino is the inflaton in a hybrid inflationary framework. We obtain a spectral index (ns≃0.966), and a tensor-to-scalar ratio (r≃0.0056−10−11), consistent with the current Planck data satisfying PBH as dark matter (DM) and detectable Gravitational Wave (GW) signal. Our findings show that the mass of PBH and the peak in the GW spectrum is correlated with the right-handed (s)neutrino mass. We identify parameter space where PBHs can be the entire DM candidate of the universe (with mass 10−13M⊙) or a fraction of it. This can be tested in future observatories, for example, with amplitude ΩGWh2 ∼10−9 and peak frequency f∼0.1 Hz in LISA and ΩGWh2∼10−11 and peak frequency of ∼10 Hz in ET via second-order GW signals. We study two models of sneutrino inflation: Model−1 involves canonical sneutrino kinetic term which predicts the sub-Planckian mass parameter M, while the coupling between a gauge singlet and the waterfall field, β, needs to be quite large whereas, for the model−2 involving α−attractor canonical sneutrino kinetic term, β can take a natural value. Estimating explicitly, we show that both models have mild fine-tuning. We also derive an analytical expression for the power spectrum in terms of the microphysics parameters of the model like (s)neutrino mass, etc. that fits well with the numerical results. The typical reheat temperature for both the models is around 107−108~GeV suitable for non-thermal leptogenesis.
Text
2407.15082v3
- Author's Original
Available under License Other.
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Accepted/In Press date: 21 July 2024
Additional Information:
In the revised version texts modified, all results including figures and conclusions remain intact
Keywords:
astro-ph.CO, hep-ph, hep-th
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Local EPrints ID: 496289
URI: http://eprints.soton.ac.uk/id/eprint/496289
PURE UUID: 47c3243f-b431-4f34-8f5c-708e68a5a561
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Date deposited: 10 Dec 2024 18:05
Last modified: 10 Dec 2024 18:05
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Author:
Adeela Afzal
Author:
Anish Ghoshal
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