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A PHYSICAL MODEL FOR THE 0 less than or similar to z less than or similar to 8 REDSHIFT EVOLUTION OF THE GALAXY ULTRAVIOLET LUMINOSITY AND STELLAR MASS FUNCTIONS

Author(s)
Tacchella, SandroTrenti, MicheleCarollo, C. Marcella
Issued Date
2013-05
DOI
10.1088/2041-8205/768/2/L37
URI
https://scholarworks.unist.ac.kr/handle/201301/53288
Citation
ASTROPHYSICAL JOURNAL LETTERS, v.768, no.2
Abstract
We present a model to understand the redshift evolution of the UV luminosity and stellar mass functions of Lyman break galaxies. Our approach is based on the assumption that the luminosity and stellar mass of a galaxy is related to its dark-matter (DM) halo assembly and gas infall rate. Specifically, galaxies experience a burst of star formation at the halo assembly time, followed by a constant star formation rate, representing a secular star formation activity sustained by steady gas accretion. Star formation from steady gas accretion is the dominant contribution to the galaxy UV luminosity at all redshifts. The model is calibrated by constructing a galaxy luminosity versus halo mass relation at z = 4 via abundance matching. After this luminosity calibration, the model naturally fits the z = 4 stellar mass function, and correctly predicts the evolution of both luminosity and stellar mass functions from z = 0 to z = 8. While the details of star formation efficiency and feedback are hidden within our calibrated luminosity versus halo mass relation, our study highlights that the primary driver of galaxy evolution across cosmic time is the buildup of DM halos, without the need to invoke a redshift-dependent efficiency in converting gas into stars.
Publisher
IOP PUBLISHING LTD
ISSN
2041-8205
Keyword (Author)
cosmology: theorygalaxies: high-redshiftstars: formation
Keyword
LYMAN-BREAK GALAXIESDARK-MATTER HALOESSTAR-FORMATION HISTORYULTRA DEEP FIELDFORMING GALAXIESDENSITYCONSTRAINTSHUDF09LIGHTRATES

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