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Probing self-interacting ultrahigh-energy neutrinos with the cosmic 21-cm signal

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arxiv 2406.19279 v2 pith:L7WATKDV submitted 2024-06-27 hep-ph astro-ph.CO

Probing self-interacting ultrahigh-energy neutrinos with the cosmic 21-cm signal

classification hep-ph astro-ph.CO
keywords cosmicneutrinoneutrinosdarksignalultrahigh-energyagesastrophysical
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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abstract

In this study, we investigate the constraints on secret self-interactions of neutrinos by examining the impact of radiative scattering of ultrahigh-energy neutrinos. These neutrinos are produced from the decay of superheavy dark matter and interact with the cosmic neutrino background. We explore how these interactions influence the 21-cm hydrogen signal during the cosmic dark ages and cosmic dawn, periods relatively free from astrophysical uncertainties, providing a clearer signal for studying nonstandard neutrino interactions. By analyzing the global brightness temperature measurements, we constrain the scattering cross section of ultrahigh-energy self-interacting neutrinos, determining the coupling constant $g$ to be within $\sim 10^{-4}$ to $\sim 10^{-3}$ for neutrino energies in the PeV to EeV range. Interestingly, these constraints are more competitive than those from existing astrophysical and collider experiments. As future 21-cm experiments focus on measuring brightness temperature across a wide range of redshifts from the cosmic dark ages to reionization, using the epoch of 21-cm to probe neutrino properties could provide crucial insights into dark matter and neutrino physics.

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  1. Tracing the Neutrino-Induced Phase Shift in the 21-cm Spectrum

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    The neutrino-induced phase shift in the 21-cm power spectrum is a redshift- and scale-dependent weighted average of two distinct templates: the known BAO phase shift and a newly computed, larger VAO phase shift.