The physical properties of star-forming galaxies in the low-redshift Universe
Физические свойства галактик, в которых происходит звездообразование, во Вселенной с низким красным смещением
2004-07-11
SCID: 54.1/kcu8wruq
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4000-Å breakSloan Digital Sky Surveyaperture correctionstar formation rate densitystar-forming galaxies
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Abstract (AI)
Abstract We present a comprehensive study of the physical properties of ∼ 105 galaxies with measurable star formation in the Sloan Digital Sky Survey (SDSS). By comparing physical information extracted from the emission lines with continuum properties, we build up a picture of the nature of star-forming galaxies at z < 0.2. We develop a method for aperture correction using resolved imaging and show that our method takes out essentially all aperture bias in the star formation rate (SFR) estimates, allowing an accurate estimate of the total SFRs in galaxies. We determine the SFR density to be 1.915+0.02−0.01 (random)+0.14−0.42 (systematic) h7010−2 M⊙ yr−1 Mpc−3 at z= 0.1 (for a Kroupa initial mass function) and we study the distribution of star formation as a function of various physical parameters. The majority of the star formation in the low-redshift Universe takes place in moderately massive galaxies (1010–1011 M⊙), typically in high surface brightness disc galaxies. Roughly 15 per cent of all star formation takes place in galaxies that show some sign of an active nucleus. About 20 per cent occurs in starburst galaxies. By focusing on the SFR per unit mass we show that the present to past average SFR, the Scalo b-parameter, is almost constant over almost three orders of magnitude in mass, declining only at M* > 1010 M⊙. The volume averaged b parameter is 0.408+0.005−0.002 (random)+0.029−0.090 (systematic)h−170. We use this value to constrain the star formation history of the Universe. For the concordance cosmology the present-day Universe is forming stars at at least 1/3 of its past average rate. For an exponentially declining cosmic star formation history this corresponds to a time-scale of 7+0.7−1.5 Gyr. In agreement with other work we find a correlation between b and morphological type, as well as a tight correlation between the 4000-Å break (D4000) and b. We discuss how D4000 can be used to estimate b parameters for high-redshift galaxies.
Key Findings
1
A comprehensive SDSS study of approximately 10^5 star-forming galaxies at z < 0.2 links emission-line measurements with continuum properties.
2
A resolved-imaging aperture-correction method removes essentially all aperture bias in SFR estimates, enabling accurate total galaxy SFRs.
3
Most low-redshift star formation occurs in moderately massive (10^10–10^11 M⊙), typically high-surface-brightness disc galaxies; approximately 15% involves galaxies showing active-nucleus signatures and 20% occurs in starbursts.
4
The Scalo b parameter is nearly mass-independent across almost three orders of magnitude, declines above 10^10 M⊙, correlates with morphology, and is tightly correlated with the 4000-Å break D4000.
5
The star-formation-rate density at z = 0.1 is 1.915^{+0.02}_{−0.01} (random)^{+0.14}_{−0.42} (systematic) h_70^1 M⊙ yr^−1 Mpc^−3 for a Kroupa IMF.
6
The volume-averaged Scalo b parameter is 0.408^{+0.005}_{−0.002} (random)^{+0.029}_{−0.090} (systematic) h_70^−1, implying present-day star formation is at least one-third of its past average rate and an exponential-history timescale of 7^{+0.7}_{−1.5} Gyr.
Research Object
Star-forming galaxies at redshift z < 0.2 in the low-redshift Universe, including their stellar populations and host-galaxy properties
Research Subject
The distribution and physical properties of star formation, including total and specific SFRs, SFR density, the Scalo b-parameter, and their relationships with galaxy mass, surface brightness, morphology, nuclear activity, and D4000
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2004-07-11
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