2011ApJ...741...12B


Query : 2011ApJ...741...12B

2011ApJ...741...12B - Astrophys. J., 741, 12 (2011/November-1)

The state of the gas and the relation between gas and star formation at low metallicity: the Small Magellanic Cloud.

BOLATTO A.D., LEROY A.K., JAMESON K., OSTRIKER E., GORDON K., LAWTON B., STANIMIROVIC S.Z., ISRAEL F.P., MADDEN S.C., HONY S., SANDSTROM K.M., BOT C., RUBIO M., WINKLER P.F., ROMAN-DUVAL J., VAN LOON J.Th., OLIVEIRA J.M. and INDEBETOUW R.

Abstract (from CDS):

We compare atomic gas, molecular gas, and the recent star formation rate (SFR) inferred from Hα in the Small Magellanic Cloud (SMC). By using infrared dust emission and local dust-to-gas ratios, we construct a map of molecular gas that is independent of CO emission. This allows us to disentangle conversion factor effects from the impact of metallicity on the formation and star formation efficiency of molecular gas. On scales of 200 pc to 1 kpc (where the distributions of H2 and star formation match well) we find a characteristic molecular gas depletion time of τmoldep ∼ 1.6 Gyr, similar to that observed in the molecule-rich parts of large spiral galaxies on similar spatial scales. This depletion time shortens on much larger scales to ∼0.6 Gyr because of the presence of a diffuse Hα component, and lengthens on much smaller scales to ∼7.5 Gyr because the Hα and H2 distributions differ in detail. We estimate the systematic uncertainties in our dust-based τmoldep measurement to be a factor of ∼2-3. We suggest that the impact of metallicity on the physics of star formation in molecular gas has at most this magnitude, rather than the factor of ∼40 suggested by the ratio of SFR to CO emission. The relation between SFR and neutral () gas surface density is steep, with a power-law index ~2.2±0.1, similar to that observed in the outer disks of large spiral galaxies. At a fixed total gas surface density the SMC has a 5-10 times lower molecular gas fraction (and star formation rate) than large spiral galaxies. We explore the ability of the recent models by Krumholz et al. and Ostriker et al. to reproduce our observations. We find that to explain our data at all spatial scales requires a low fraction of cold, gravitationally bound gas in the SMC. We explore a combined model that incorporates both large-scale thermal and dynamical equilibrium and cloud-scale photodissociation region structure and find that it reproduces our data well, as well as predicting a fraction of cold atomic gas very similar to that observed in the SMC.

Abstract Copyright:

Journal keyword(s): galaxies: dwarf - galaxies: evolution - ISM: clouds - Magellanic Clouds

Simbad objects: 10

goto Full paper

goto View the references in ADS

Number of rows : 10
N Identifier Otype ICRS (J2000)
RA
ICRS (J2000)
DEC
Mag U Mag B Mag V Mag R Mag I Sp type #ref
1850 - 2024
#notes
1 M 31 AGN 00 42 44.330 +41 16 07.50 4.86 4.36 3.44     ~ 12645 1
2 NAME SMC G 00 52 38.0 -72 48 01   2.79 2.2     ~ 11146 1
3 NAME SMC Bar PoG 01 05 -72.6           ~ 235 0
4 NGC 456 HII 01 13 44.4 -73 17 26           ~ 127 0
5 LHA 115-N 84 HII 01 14 27.7 -73 12 51           ~ 65 0
6 M 33 GiG 01 33 50.8965749232 +30 39 36.630403128 6.17 6.27 5.72     ~ 5838 1
7 NAME Magellanic Clouds GrG 03 00 -71.0           ~ 7065 0
8 NAME Hubble Ultra Deep Field reg 03 32 39.0 -27 47 29           ~ 1666 0
9 NAME LMC G 05 23 34.6 -69 45 22     0.4     ~ 17432 0
10 NAME Local Group GrG ~ ~           ~ 8389 0

To bookmark this query, right click on this link: simbad:objects in 2011ApJ...741...12B and select 'bookmark this link' or equivalent in the popup menu