English

A forward-modelling method to infer the dark matter particle mass from strong gravitational lenses

Cosmology and Nongalactic Astrophysics 2022-02-10 v2

Abstract

A fundamental prediction of the cold dark matter (CDM) model of structure formation is the existence of a vast population of dark matter haloes extending to subsolar masses. By contrast, other dark matter models, such as a warm thermal relic (WDM), predict a cutoff in the mass function at a mass which, for popular models, lies approximately between 10710^7 and 1010 M10^{10}~{\rm M}_\odot. We use mock observations to demonstrate the viability of a forward modelling approach to extract information about low-mass dark haloes lying along the line-of-sight to galaxy-galaxy strong lenses. This can be used to constrain the mass of a thermal relic dark matter particle, mDMm_\mathrm{DM}. With 50 strong lenses at Hubble Space Telescope resolution and a maximum pixel signal-to-noise ratio of 50\sim50, the expected median 2σ\sigma constraint for a CDM-like model (with a halo mass cutoff at 107 M10^{7}~{\rm M}_\odot) is mDM>4.10keVm_\mathrm{DM} > 4.10 \, \mathrm{keV} (50% chance of constraining mDMm_{\rm DM} to be better than 4.10 keV). If, however, the dark matter is a warm particle of mDM=2.2keVm_\mathrm{DM}=2.2 \, \mathrm{keV}, our 'Approximate Bayesian Computation' method would result in a median estimate of mDMm_\mathrm{DM} between 1.43 and 3.21 keV. Our method can be extended to the large samples of strong lenses that will be observed by future telescopes, and could potentially rule out the standard CDM model of cosmogony. To aid future survey design, we quantify how these constraints will depend on data quality (spatial resolution and integration time) as well as on the lensing geometry (source and lens redshifts).

Keywords

Cite

@article{arxiv.2010.13221,
  title  = {A forward-modelling method to infer the dark matter particle mass from strong gravitational lenses},
  author = {Qiuhan He and Andrew Robertson and James Nightingale and Shaun Cole and Carlos S. Frenk and Richard Massey and Aristeidis Amvrosiadis and Ran Li and Xiaoyue Cao and Amy Etherington},
  journal= {arXiv preprint arXiv:2010.13221},
  year   = {2022}
}

Comments

Accepted by MNRAS. Comments welcome