The cosmic UV background and the beginning and end of star formation in simulated field dwarf galaxies
arXiv:2206.05338 · doi:10.1093/mnras/stac3633
Abstract
We use the APOSTLE cosmological simulations to examine the role of the cosmic UV background in regulating star formation (SF) in low-mass LCDM halos. In agreement with earlier work, we find that after reionization SF proceeds mainly in halos whose mass exceeds a redshift-dependent ``critical'' mass, Mcrit, set by the structure of the halos and by the thermal pressure of UV-heated gas. Mcrit increases from ~10^8 Msun at z~10 to Mcrit ~10^9.7 Msun at z=0, roughly following the average mass growth of halos in that mass range. This implies that halos well above or below critical at present have remained so since early times. Halos of luminous dwarfs today were already above-critical and star-forming at high redshift, explaining naturally the ubiquitous presence of ancient stellar populations in dwarfs, regardless of luminosity. The SF history of systems close to the critical boundary is more complex. SF may cease or reignite in dwarfs whose host halo falls below or climbs above the critical boundary, suggesting an attractive explanation for the episodic nature of SF in some dwarfs. Also, some subcritical halos today may have been above critical in the past; these systems should at present make up a sizable population of faint field dwarfs lacking ongoing star formation. Although few such galaxies are currently known, the discovery of this population would provide strong support for our results. Our work indicates that, rather than stellar feedback, it is the ionizing UV background and mass accretion history what regulates SF in the faintest dwarfs.
12 pages, 12 figures. Accepted by MNRAS
References in corpus (17)
- The EAGLE project: Simulating the evolution and assembly of galaxies and their environments
- The EAGLE simulations of galaxy formation: calibration of subgrid physics and model variations
- The effect of photo-ionization on the cooling rates of enriched, astrophysical plasmas
- Massloss of galaxies due to a UV-background
- The Star Formation Histories of Local Group Dwarf Galaxies I. Hubble Space Telescope / Wide Field Planetary Camera 2 Observations
- The Quenching of the Ultra-Faint Dwarf Galaxies in the Reionization Era
- The Star Formation Histories of Local Group Dwarf Galaxies II. Searching For Signatures of Reionization
- Ultra-faint dwarfs in a Milky Way context: Introducing the Mint Condition DC Justice League Simulations
- The detailed structure and the onset of galaxy formation in low-mass gaseous dark matter haloes
- The effect of feedback and reionization on star formation in low-mass dwarf galaxy haloes
- EDGE: From quiescent to gas-rich to star-forming low-mass dwarf galaxies
- The properties of "dark" ΛCDM halos in the Local Group
- The edge of galaxy formation I: formation and evolution of MW-satellites analogues before accretion
- A new isolated dSph galaxy near the Local Group
- EDGE: What shapes the relationship between HI and stellar observables in faint dwarf galaxies?
- A recently quenched isolated dwarf galaxy outside of the Local Group environment
- The Tail of Late-forming Dwarf Galaxies in CDM
Cited by in corpus (10)
- Feedback reshapes the baryon distribution within haloes, in halo outskirts, and beyond: the closure radius from dwarfs to massive clusters
- Quiescent low-mass galaxies observed by JWST in the Epoch of Reionization
- Pegasus W: An Ultra-Faint Dwarf Galaxy Outside the Halo of M31 Not Quenched by Reionization
- Ursa Major III/UNIONS 1: the darkest galaxy ever discovered?
- The SAMI-Fornax Dwarfs Survey III: Evolution of [/Fe] in dwarfs, from Galaxy Clusters to the Local Group
- Micro galaxies in LCDM
- Born to be Starless: Revisiting the Missing Satellite Problem
- MIGHTEE-HI: The star-forming properties of HI selected galaxies
- HI-bearing dark galaxies predictions from constrained Local Group simulations: how many and where to find them
- Mapping the z>=5 SiIV Column Density Distribution onto the Galaxy Stellar Mass Function Using the Cumulative Absorption Cross Section