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Stellar masses and star formation histories for 10<sup>5</sup>galaxies from the Sloan Digital Sky Survey

Monthly Notices of the Royal Astronomical Society · 2003 · Vol. 341(1) · pp. 33–53
Guinevere KauffmannTimothy M. HeckmanD. M. Simon WhiteS. CharlotChristy TremontiJ. BrinchmannGustavo BruzualEric W. PengMark SeibertMariangela BernardiMichael R. BlantonJ. BrinkmannF. J. CastanderIstván CsabaiM. FukugitaŽeljko IvezićJeffrey A. MunnR. C. NicholNikhil PadmanabhanAniruddha R. ThakarDavid H. WeinbergDonald G. York

Abstract

We develop a new method to constrain the star formation histories, dust attenuation and stellar masses of galaxies. It is based on two stellar absorption line indices, the 4000 break strength and the Balmer absorption line index H A . Together, these indices allow us to constrain the mean stellar ages of galaxies and the fractional stellar mass formed in bursts over the past few Gyr. A comparison with broad band photometry then yields estimates of dust attenuation and of stellar mass. We generate a large library of Monte Carlo realizations of different star formation histories, including starbursts of varying strength and a range of metallicities. We use this library to generate median likelihood estimates of burst mass fractions, dust attenuation strengths, stellar masses and stellar mass-to-light ratios for a sample of 122,808 galaxies drawn from the Sloan Digital Sky Survey. The typical 95% confidence range in our estimated stellar masses is 40 %. We study how the stellar mass-to-light ratios of galaxies vary as a function of absolute magnitude, concentration index and photometric pass-band and how dust attenuation varies as a function of absolute magnitude and 4000 break strength. We also calculate how the total stellar mass of the present Universe is distributed over galaxies as a function of their mass, size, concentration, colour, burst mass fraction and surface mass density. We find that most of the stellar mass in the local Universe resides in galaxies that have, to within a factor of about 2, stellar masses 510 10 M , half-light radii 3 kpc, and half-light surface mass densities 10 9 M kpc -2 . The distribution of D n (4000) is strongly bimodal, showing a clear division between galaxies dominated by old stellar populations and galaxies with more recent star formation.

Galaxies: Formation, Evolution, PhenomenaStellar, planetary, and galactic studiesAstronomy and Astrophysical ResearchPhysicsAstrophysicsStellar massGalaxyAstronomyInitial mass functionPhotometry (optics)Star formationStellar mass lossStellar evolution

Funding

  • National Science Foundation
  • U.S. Department of Energy
  • National Aeronautics and Space Administration
  • Alfred P. Sloan Foundation
  • Alexander von Humboldt-Stiftung
  • Princeton University
  • University of Washington
  • Johns Hopkins University
  • New Mexico State University
  • Bundesministerium für Bildung und Forschung
  • Max-Planck-Gesellschaft
  • Max-Planck-Institut für Astronomie
  • U.S. Naval Observatory
  • Fermilab
  • Los Alamos National Laboratory
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References
The Sloan Digital Sky Survey Photometric Camera
The Astronomical Journal · 1998 · 1,570 citations
The Sloan Digital Sky Survey Photometric System
The Astronomical Journal · 1996 · 2,816 citations
Sloan Digital Sky Survey: Early Data Release
The Astronomical Journal · 2002 · 2,238 citations
On the variation of the initial mass function
Monthly Notices of the Royal Astronomical Society · 2001 · 7,117 citations
High-redshift galaxies in the Hubble Deep Field: colour selection and star formation history to z   4
Monthly Notices of the Royal Astronomical Society · 1996 · 1,912 citations
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