Opacities of dense gas tracers in galactic massive star-forming regions
arXiv:2309.09544 · doi:10.1093/mnras/stad2507
Abstract
Optical depths of dense molecular gas are commonly used in Galactic and extragalactic studies to constrain the dense gas mass of the clouds or galaxies. The optical depths are often obtained based on spatially unresolved data, especially in galaxies, which may affect the reliability of such measurements. We examine such effects in spatially resolved Galactic massive star-forming regions. Using the 10-m SMT telescope, we mapped HCN and H13CN 3-2, HCO+, and H13CO+ 3-2 towards 51 Galactic massive star-forming regions, 30 of which resulted in robust determination of spatially resolved optical depths. Conspicuous spatial variations of optical depths have been detected within each source. We first obtained opacities for each position and calculated an optical-thick line intensity-weighted average, then averaged all the spectra and derived a single opacity for each region. The two were found to agree extremely well, with a linear least square correlation coefficient of 0.997 for the whole sample.
41 pages, 33 figures, 5 tables, publication in MNRAS
References in corpus (8)
- Molecular gas in extreme star-forming environments: the starbursts Arp220 and NGC6240 as case studies
- New Constraints on the CO(2-1)/(1-0) Line Ratio Across Nearby Disc Galaxies
- HCN Observations of Dense Star-Forming Gas in High Redshift Galaxies
- On carbon and oxygen isotope ratios in starburst galaxies: New data from NGC253 and Mrk231 and their implications
- Optical Depth Estimates and Effective Critical Densities of Dense Gas Tracers in the Inner Parts of Nearby Galaxy Discs
- CO/CO Gradients Across the Disks of Nearby Spiral Galaxies
- Dense gas in local galaxies revealed by multiple tracers
- Properties of dense molecular gas along the major axis of M 82