English

Warm dark matter constraints from the JWST

Cosmology and Nongalactic Astrophysics 2024-01-11 v2 Astrophysics of Galaxies

Abstract

Warm Dark Matter (WDM) particles with masses (\sim kilo electronvolt) offer an attractive solution to the small-scale issues faced by the Cold Dark Matter (CDM) paradigm. The delay of structure formation in WDM models and the associated dearth of low-mass systems at high-redshifts makes this an ideal time to revisit WDM constraints in light of the unprecedented data-sets from the James Webb Space Telescope (JWST). Developing a phenomenological model based on the halo mass functions in CDM and WDM models, we calculate high-redshift (z>6z \gt 6) the stellar mass functions (SMF) and the associated stellar mass density (SMD) and the maximum stellar mass allowed in a given volume. We find that: (i) WDM as light as 1.5 keV is already disfavoured by the low-mass end of the SMF (stellar mass M107MM_* \sim 10^7 \rm{M_\odot}) although caution must be exerted given the impact of lensing uncertainties; (ii) 1.5 keV WDM models predict SMD values that show a steep decrease from 108.810^{8.8} to 102 M cMpc310^{2} ~{\rm M_\odot ~cMpc^{-3}} from z4z \sim 4 to 17 for M>108MM_* \gt 10^8 \rm{M_\odot}; (iii) the 1.5 keV WDM model predicts a sharp and earlier cut-off in the maximum stellar masses for a given number density (or volume) as compared to CDM or heavier WDM models. For example, with a number density of 103cMpc310^{-3} \rm {cMpc^{-3}}, 1.5 (3) KeV WDM models do not predict bound objects at z>12z \gt 12 (18). Forthcoming JWST observations of multiple blank fields can therefore be used as a strong probe of WDM at an epoch inaccessible by other means.

Keywords

Cite

@article{arxiv.2303.14239,
  title  = {Warm dark matter constraints from the JWST},
  author = {Pratika Dayal and Sambit K. Giri},
  journal= {arXiv preprint arXiv:2303.14239},
  year   = {2024}
}

Comments

Accepted to MNRAS

R2 v1 2026-06-28T09:32:51.770Z