Emission from Dust in Galaxies: Metallicity Dependence
arXiv:astro-ph/0011237 · doi:10.1051/0004-6361:20000008
Abstract
Infrared (IR) dust emission from galaxies is frequently used as an indicator of star formation rate (SFR). However, the effect of the dust-to-gas ratio (i.e., amount of the dust) on the conversion law from IR luminosity to SFR has not so far been considered. Then, in this paper, we present a convenient analytical formula including this effect. In order to obtain the dependence on the dust-to-gas ratio, we extend the formula derived in our previous paper, in which a theoretical formula converting IR luminosity to SFR was derived. That formula was expressed as , where f is the fraction of ionizing photons absorbed by hydrogen, is the efficiency of dust absorption for nonionizing photons, is the cirrus fraction of observed dust luminosity, and is the observed luminosity of dust emission in the 8-1000-m range. Our formula explains the IR excess of the Galaxy and the Large Magellanic Cloud. In the current paper, especially, we present the metallicity dependence of our conversion law between SFR and . This is possible since both f and can be estimated via the dust-to-gas ratio, which is related to metallicity. We have confirmed that the relation between the metallicity and the dust-to-gas ratio is applied to both giant and dwarf galaxies. Finally, we apply the result to the cosmic star formation history. We find that the comoving SFR at z=3 calculated from previous empirical formulae is underestimated by a factor of 4-5.
8 pages LaTeX, to appear in A&A
References in corpus (4)
- Conversion Law of Infrared Luminosity to Star Formation Rate for Galaxies
- Dust-to-Gas Ratio and Metallicity in Dwarf Galaxies
- Application of the Limit Cycle Model to Star Formation Histories in Spiral Galaxies: Variation among Morphological Types
- Testing Intermittency of the Galactic Star Formation History along with the Infall Model
Cited by in corpus (21)
- Star Formation in the Milky Way and Nearby Galaxies
- Dust-Corrected Star Formation Rates of Galaxies. I. Combinations of H-alpha and Infrared Tracers
- High mass star formation in normal late-type galaxies: observational constraints to the IMF
- Star formation rate in galaxies from UV, IR, and H-alpha estimators
- Massive star formation in Wolf-Rayet galaxies. IV: Colours, chemical composition analysis and metallicity-luminosity relations
- Effect of Dust Extinction on Estimating Star Formation Rate of Galaxies: Lyman Continuum Extinction
- The size--density relation of extragalactic HII regions
- Star-Formation Rates of Local Blue Compact Dwarf Galaxies I: 1.4 GHz and 60 um luminosities
- The radial extinction profiles of late-type galaxies
- Lyman Continuum Extinction by Dust in H {\sc ii} Regions of Galaxies
- Massive star formation in Wolf-Rayet galaxies. V: Star formation rates, masses and the importance of galaxy interactions
- Tracing the star formation history of cluster galaxies using the Halpha/UV flux ratio
- Massive star formation in Wolf-Rayet galaxies: II. Optical spectroscopy results
- The star-formation law at GMC scales in M33, the Triangulum Galaxy
- Comparison of star formation rates from Halpha and infrared luminosities as seen by Herschel
- Herschel Far-IR counterparts of SDSS galaxies: Analysis of commonly used Star Formation Rate estimates
- Common Correlations between 60, 100 and 140 um Intensities in the Galactic Plane and Magellanic Clouds
- Far-infrared dust properties in the Galaxy and the Magellanic Clouds
- Gamma-ray emission from spectrally resolved cosmic rays in galaxies
- The dust-star interplay in late-type galaxies at z < 0.5: forecasts for the JWST
- History of Star Formation Rate and Luminosity Density of Galaxies