Closing the window on fuzzy dark matter with the 21cm signal
arXiv:2207.05083 · doi:10.1103/PhysRevD.106.063504
Abstract
Fuzzy dark matter (FDM) is a well motivated candidate for dark matter (DM) as its tiny mass and large de-Broglie wavelength suppress small-scale matter fluctuations, thereby solving some of the small-scale discrepancies in CDM. Although it has been ruled out as the single component of DM by several observables, there is still a region in the FDM parameter space (the "FDM window", ) where FDM is allowed to comprise a large portion of the total DM. In this work, for the first time, we study the signature of FDM (comprised of ultra-light axions) in fractions less than unity on the 21cm signal and its detectability by 21cm interferometers such as HERA, taking into account the degeneracy with both astrophysical and cosmological parameters, using a new pipeline that combines modified versions of the CAMB and 21cmFAST codes. Our forecasts imply that HERA in its design performance will be sensitive to FDM fractions as small as 1% in the FDM window, and improve over existing bounds for other masses by up to an order of magnitude.
9 pages, 3 figures; fixed typo in Eq. 5, updated bounds, added figures; version accepted for publication in PRD
References in corpus (10)
- Ultralight scalars as cosmological dark matter
- Cosmology at Low Frequencies: The 21 cm Transition and the High-Redshift Universe
- A search for ultra-light axions using precision cosmological data
- Lyman-alpha Constraints on Ultralight Scalar Dark Matter: Implications for the Early and Late Universe
- Ultra Light Boson Dark Matter and Event Horizon Telescope Observations of M87*
- Galaxy UV-luminosity function and reionization constraints on axion dark matter
- The impact of ultra-light axion self-interactions on the large scale structure of the Universe
- Mitigating Internal Instrument Coupling for 21 cm Cosmology I: Temporal and Spectral Modeling in Simulations
- Non-linear hydrodynamics of axion dark matter: relative velocity effects and "quantum forces"
- Simulating the effect of photoheating feedback during reionization