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EDGE: predictable scatter in the stellar-mass-halo-mass relation of dwarf galaxies
Journal article   Open access   Peer reviewed

EDGE: predictable scatter in the stellar-mass-halo-mass relation of dwarf galaxies

Stacy Y. Kim, Justin Read, Martin P. Rey, Matthew D. A. Orkney, Sushanta Nigudkar, Andrew Pontzen, Ethan Taylor, Oscar Agertz and Payel Das
Monthly notices of the Royal Astronomical Society, Vol.549(3), stag825
01/07/2026

Abstract

Astronomy & Astrophysics Science & Technology Physical Sciences
The stellar-mass-halo-mass (SMHM) relation is central to our understanding of galaxy formation and the nature of dark matter. However, its normalization, slope, and scatter are highly uncertain at dwarf galaxy scales. In this paper, we present DARKLIGHT, a new semi-empirical dwarf galaxy formation model designed to robustly predict the SMHM relation for the smallest galaxies. DARKLIGHT harnesses a correlation between the mean star formation rate (SFR) of dwarfs and their peak rotation speed-the < SFR >-v(max) relation-that we derive from simulations and observations. Given the sparsity of data for isolated dwarfs with v(max) less than or similar to 20 km s(-1), we fit the < SFR >-v(max) relation to observational data for dwarfs above this velocity scale and to the high-resolution EDGE (Engineering Dwarfs at Galaxy formation's Edge) cosmological simulations below. Reionization quenching is implemented via distinct < SFR >-v(max) relations before and after reionization. We find that the scatter in the SMHM relation is small at reionization, similar to 0.2 dex, but rises to similar to 0.5 dex (1 sigma) at a halo mass of similar to 10(9) M-circle dot as star formation is quenched by reionization but dark matter halo masses continue to grow. While we do not find a significant break in the slope of the SMHM relation, one can be introduced if reionization occurs early (z(quench) greater than or similar to 5 ). Finally, we find that dwarfs can be star forming today down to a halo mass of similar to 2 x 10(9) M-circle dot. We predict that the lowest mass star-forming dwarf irregulars in the nearby universe are the tip of the iceberg of a much larger population of quiescent isolated dwarfs.
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