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Molecular Gas and the Young Starburst in NGC 5253 Revisited

2002/05/28 by David S. Meier, Jean L. Turner, S. C. Beck +1 · 2 citations
Physics and Astronomy · #Astronomy #Astrophysics #Astrophysics and Star Formation Studies #Dwarf galaxy #Galaxies: Formation, Evolution, Phenomena #Galaxy #Metallicity #Millimeter #Molecular cloud #Physics #Star cluster #Star formation #Stars #Stellar, planetary, and galactic studies #astro-ph

paper · pdf · doi:10.1086/341752

23 pages, 4 figures, accepted to the Astronomical Journal

arxiv created 2002/05/28 · openalex publication_date 2002/08/01 · arxiv updated 2009/12/01 · openalex created_date 2025/10/10 · openalex updated_date 2026/08/05

Abstract

We report the detection of CO(2–1) and 3.1 and 1.3 mm continuum emission toward the extremely young starburst in NGC 5253, with data taken from the Owens Valley Millimeter Array. Faint CO emission originates in five molecular clouds distributed along the prominent dust lane seen in visual images. With the gas, the morphology of NGC 5253 looks much like a dwarf elliptical version of the "dust-lane ellipticals" or "polar-ring" class of galaxies. The molecular gas resides in GMCs well away from the radio-IR super–star cluster/supernebula seen in the radio and infrared. The millimeter continuum data confirm that the 2 cm flux from the supernebula is optically thick; the Lyman continuum rate derived from the 1.3 mm continuum is N Lyc ∼ 6 × 10 52 s -1 for the central ∼20''. CO may underestimate the true molecular column density, as expected for a low-metallicity system, although there are regions along the dust lane that appear to have near-Galactic conversion factors. We estimate a total molecular gas mass of M ≲10 7 M ⊙ . The molecular gas in the dust lane is falling into the galaxy, supporting an accretion hypothesis. The dust lane gas cannot therefore be causally associated with the current burst of star formation. A relatively small amount, M ≲5 × 10 5 M ⊙ , of molecular gas is associated with the current starburst. We estimate a star formation efficiency of at least 25% and more likely ∼75%, consistent with the formation of a bound cluster. Despite the extreme youth of the starburst, the specific trigger of the starburst remains elusive, although the infall of gas in the dust lane suggests that there is more star formation to come in NGC 5253.

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