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SPECTRAL LINE SURVEY TOWARD MOLECULAR CLOUDS IN THE LARGE MAGELLANIC CLOUD

2015/12/08 by Y. Nishimura, Yuri Nishimura, Takashi Shimonishi +5 · 1 citation
Chemistry · Physics and Astronomy · #Abundance (ecology) #Astronomy #Astrophysics #Astrophysics and Star Formation Studies #Biology #Chemical composition #Chemistry #Large Magellanic Cloud #Line (geometry) #Metallicity #Molecular Spectroscopy and Structure #Molecular cloud #Photochemistry #Photodissociation #Physics #Small Magellanic Cloud #Spectral line #Star formation #Stars #Stellar, planetary, and galactic studies #astro-ph.GA

paper · pdf · doi:10.3847/0004-637x/818/2/161

45 pages, 7 figures, 7 tables, accepted for publication in ApJ

arxiv created 2015/12/08 · openalex publication_date 2016/02/17 · arxiv updated 2016/03/09 · openalex created_date 2016/06/24 · openalex updated_date 2026/08/05

Abstract

ABSTRACT Spectral line survey observations of seven molecular clouds in the Large Magellanic Cloud (LMC) have been conducted in the 3 mm band with the Mopra 22 m telescope to reveal chemical compositions in low metallicity conditions. Spectral lines of fundamental species such as CS, SO, CCH, HCN, HCO + , and HNC are detected in addition to those of CO and 13 CO, while CH 3 OH is not detected in any source and N 2 H + is marginally detected in two sources. The molecular-cloud scale (10 pc scale) chemical composition is found to be similar among the seven sources regardless of different star formation activities, and hence, it represents the chemical composition characteristic of the LMC without influences by star formation activities. In comparison with chemical compositions of Galactic sources, the characteristic features are (1) deficient N-bearing molecules, (2) abundant CCH, and (3) deficient CH 3 OH. Feature (1) is due to a lower elemental abundance of nitrogen in the LMC, whereas features (2) and (3) seem to originate from extended photodissociation regions and warmer temperature in cloud peripheries due to a lower abundance of dust grains in the low metallicity condition. In spite of general resemblance of chemical abundances among the seven sources, the CS/HCO + and SO/HCO + ratios are found to be slightly higher in a quiescent molecular cloud. An origin of this trend is discussed in relation to possible depletion of sulfur along the molecular cloud formation.

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