Stellar disruption of axion miniclusters in the Milky Way
Ver/ Abrir
Identificadores
URI: https://hdl.handle.net/10902/31277ISSN: 2470-0010
ISSN: 2470-0029
ISSN: 1550-7998
ISSN: 1550-2368
Registro completo
Mostrar el registro completo DCFecha
2021Derechos
© American Physical Society
Publicado en
Physical Review D, 2021, 104(13), 063038
Editorial
American Physical Society
Enlace a la publicación
Resumen/Abstract
Axion miniclusters are dense bound structures of dark matter axions that are predicted to form in the
postinflationary Peccei-Quinn symmetry breaking scenario. Although dense, miniclusters can easily be
perturbed or even become unbound by interactions with baryonic objects such as stars. Here, we
characterize the spatial distribution and properties of miniclusters in the Milky Way (MW) today after
undergoing these stellar interactions throughout their lifetime. We do this by performing a suite of
Monte Carlo simulations which track the miniclusters? structure and, in particular, accounts for partial
disruption and mass loss through successive interactions. We consider two density profiles?Navarro Frenk-White (NFW) and power-law (PL)?for the individual miniclusters in order to bracket the
uncertainties on the minicluster population today due to their uncertain formation history. For our fiducial
analysis at the solar position, we find a survival probability of 99% for miniclusters with PL profiles and
46% for those with NFW profiles. Our work extends previous estimates of this local survival probability to
the entire MW. We find that towards the Galactic Center, the survival probabilities drop drastically.
Although we present results for a particular initial halo mass function, our simulations can be easily recast
to different models using the provided data and code (github.com/bradkav/axion-miniclusters). Finally, we
comment on the impact of our results on lensing, direct, and indirect detection.
Colecciones a las que pertenece
- D52 Artículos [1337]