The neutrino minimal standard model (νMSM) has been tightly constrained in the recent years, either from dark matter (DM) production or from X-ray and small-scale observations. However, current bounds on sterile neutrino DM can be significantly modified when considering a νMSM extension, in which the DM candidates interact via a massive (axial) vector field. In particular, standard production mechanisms in the early Universe can be affected through the decay of such a massive mediator. We perform an indirect detection analysis to study how the νMSM parameter-space constraints are affected by said interactions. We compute the X-ray fluxes considering a DM profile that self-consistently accounts for the particle physics model by using an updated version of the Ruffini–Argüelles–Rueda (RAR) fermionic (“ino”) model, instead of phenomenological profiles such as the Navarro–Frenk–White (NFW) distribution. We show that the RAR profile accounting for interacting DM, is compatible with measurements of the Galaxy rotation curve and constraints on the DM self-interacting cross section from the Bullet cluster. A new analysis of the X-ray NuSTAR data in the central parsec of the Milky Way, is here performed to derive constraints on the self-interacting sterile neutrino parameter-space. Such constraints are stronger than those obtained with commonly used DM profiles, due to the dense DM core characteristic of the RAR profiles.

Galactic center constraints on self-interacting sterile neutrinos from fermionic dark matter (“ino”) models / Yunis, R.; Argüelles, C. R.; Mavromatos, N. E.; Moliné, A.; Krut, A.; Carinci, M.; Rueda, J. A.; Ruffini, R.. - In: PHYSICS OF THE DARK UNIVERSE. - ISSN 2212-6864. - 30:(2020). [https://doi.org/10.1016/j.dark.2020.100699]

Galactic center constraints on self-interacting sterile neutrinos from fermionic dark matter (“ino”) models

R. Yunis;M. Carinci;J. A. Rueda;R. Ruffini
2020

Abstract

The neutrino minimal standard model (νMSM) has been tightly constrained in the recent years, either from dark matter (DM) production or from X-ray and small-scale observations. However, current bounds on sterile neutrino DM can be significantly modified when considering a νMSM extension, in which the DM candidates interact via a massive (axial) vector field. In particular, standard production mechanisms in the early Universe can be affected through the decay of such a massive mediator. We perform an indirect detection analysis to study how the νMSM parameter-space constraints are affected by said interactions. We compute the X-ray fluxes considering a DM profile that self-consistently accounts for the particle physics model by using an updated version of the Ruffini–Argüelles–Rueda (RAR) fermionic (“ino”) model, instead of phenomenological profiles such as the Navarro–Frenk–White (NFW) distribution. We show that the RAR profile accounting for interacting DM, is compatible with measurements of the Galaxy rotation curve and constraints on the DM self-interacting cross section from the Bullet cluster. A new analysis of the X-ray NuSTAR data in the central parsec of the Milky Way, is here performed to derive constraints on the self-interacting sterile neutrino parameter-space. Such constraints are stronger than those obtained with commonly used DM profiles, due to the dense DM core characteristic of the RAR profiles.
2020
Dark Matter; Astrophysics; Galactic Halos
01 Pubblicazione su rivista::01a Articolo in rivista
Galactic center constraints on self-interacting sterile neutrinos from fermionic dark matter (“ino”) models / Yunis, R.; Argüelles, C. R.; Mavromatos, N. E.; Moliné, A.; Krut, A.; Carinci, M.; Rueda, J. A.; Ruffini, R.. - In: PHYSICS OF THE DARK UNIVERSE. - ISSN 2212-6864. - 30:(2020). [https://doi.org/10.1016/j.dark.2020.100699]
File allegati a questo prodotto
Non ci sono file associati a questo prodotto.

I documenti in IRIS sono protetti da copyright e tutti i diritti sono riservati, salvo diversa indicazione.

Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11573/1487672
 Attenzione

Attenzione! I dati visualizzati non sono stati sottoposti a validazione da parte dell'ateneo

Citazioni
  • ???jsp.display-item.citation.pmc??? ND
  • Scopus 6
  • ???jsp.display-item.citation.isi??? 6
social impact