Extending the Stellar-to-Halo Mass Relation to Dwarf Galaxies with DESI DR1
astro-ph.GA
Submitted: 2026-09-03
Updated: 2026-09-03
Comments: 23 pages (+4 pages of appendices), 11 figures. Comments are welcome!
License: http://creativecommons.org/licenses/by/4.0/
The gist: Constraining the dark matter halos of the smallest galaxies offers fundamental insights into the nature of dark matter and stellar feedback.
Terminology
Abstract
Constraining the dark matter halos of the smallest galaxies offers fundamental insights into the nature of dark matter and stellar feedback. Using the Dark Energy Spectroscopic Instrument (DESI) Data Release 1, we infer the stellar-to-halo mass relation (SHMR) down to the dwarf scale (M < 10 9,M), without extrapolation from the higher mass range. Leveraging the unprecedented depth of the DESI Bright Galaxy Survey at 0.01 < z < 0.2, we construct 12 samples spanning nearly four orders of magnitude in stellar mass, and measure their projected clustering w p, galaxy-galaxy lensing ΔΣ, as well as a novel observable: satellite occupation number N sat. The addition of N sat enables robust subtraction of satellite contributions to both w p and ΔΣ across the 12 individual halo occupation distribution analyses, yielding an average halo-to-stellar mass relation (HSMR) of M h(M) = 12.06 + 0.58 (M/10 11) + (M/10 11) 0.73. Combining this HSMR with an observed stellar mass function, we constrain the SHMR across five orders of magnitude in halo mass, with the power-law slope steepening from 0.32 plus or minus 0.06 above the Milky Way mass to 2.08 plus or minus 0.21 in the dwarf regime. Interestingly, the scatter about the SHMR grows from 0.17 plus or minus 0.02 dex at Milky Way-like scales to 0.68-0.33+0.21 dex for systems comparable to the Large Magellanic Cloud, suggesting that smaller galaxies follow increasingly diverse evolutionary paths. Our work highlights the power of DESI in probing the galaxy-halo connection within the dwarf regime, offering an exciting avenue to bridge the gap between large-scale and near-field cosmologies in the future.
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