Anomalous HCN emission from warm giant molecular clouds
arXiv:2111.03609 · doi:10.1051/0004-6361/202142210
Abstract
HCN is considered a good tracer of the dense molecular gas that serves as fuel for star formation. However, recent large-scale surveys of giant molecular clouds (GMCs) have detected extended HCN line emission. Such observations often resolve the HCN J=1-0 hyperfine structure (HFS). A precise determination of the physical conditions of the gas requires treating the HFS line overlap effects. Here, we study the HCN HFS excitation and line emission using nonlocal radiative transfer models that include line overlaps and new HFS-resolved collisional rate coefficients for inelastic collisions of HCN with both para-H2 and ortho-H2 (computed via the scaled-IOS approximation up to Tk=500 K). In addition, we account for the role of electron collisions in the HFS level excitation. We find that line overlap and opacity effects frequently produce anomalous HCN J=1-0 HFS line intensity ratios (inconsistent with the common assumption of the same Tex for all HFS lines) as well as anomalous HFS line width ratios. Line overlap and electron collisions also enhance the excitation of the higher J rotational lines. Electron excitation becomes important for molecular gas with H2 densities below a few 10^5 cm-3 and electron abundances above ~10^-5. In particular, electron excitation can produce low-surface-brightness HCN emission from very extended but low-density gas in GMCs. The existence of such a widespread HCN emission component may affect the interpretation of the extragalactic relationship HCN luminosity versus star-formation rate. Alternatively, extended HCN emission may arise from dense star-forming cores and become resonantly scattered by large envelopes of lower density gas. There are two scenarios - namely, electron-assisted (weakly) collisionally excited versus scattering - that lead to different HCN J=1-0 HFS intensity ratios, which can be tested on the basis of observations.
Accepted for publication in Astronomy & Astrophysics. Abridged Abstract. This is v2 after minor editorial changes
References in corpus (24)
- Cold Dark Clouds: The Initial Conditions for Star Formation
- The Critical Density and the Effective Excitation Density of Commonly Observed Molecular Dense Gas Tracers
- On the Rapid Collapse and Evolution of Molecular Clouds
- The anatomy of the Orion B Giant Molecular Cloud: A local template for studies of nearby galaxies
- Low sulfur depletion in the Horsehead PDR
- Spitzer observations of HH54 and HH7-11: mapping the H2 ortho-to-para ratio in shocked molecular gas
- Molecular Line Emission as a Tool for Galaxy Observations (LEGO). I. HCN as a tracer of moderate gas densities in molecular clouds and galaxies
- The chemistry and spatial distribution of small hydrocarbons in UV-irradiated molecular clouds: the Orion Bar PDR
- Electron Excitation of High Dipole Moment Molecules Reexamined
- The Ionization Fraction of Barnard 68: Implications for Star and Planet Formation
- Probing Inward Motions in Starless Cores Using The HCN J = 1-0 Hyperfine Transitions : A Pointing Survey Toward Central Regions
- Electron-impact rotational and hyperfine excitation of HCN, HNC, DCN and DNC
- [CII] emission from L1630 in the Orion B molecular cloud
- Star Formation Occurs in Dense Gas, but What Does "Dense" Mean?
- On the Validity of Collider-Mass Scaling for Molecular Rotational Excitation
- Molecular-Cloud-Scale Chemical Composition II: Mapping Spectral Line Survey toward W3(OH) in the 3 mm Band
- The initial gas-phase sulfur abundance in the Orion Molecular Cloud from sulfur radio recombination lines
- Tracers of the ionization fraction in dense and translucent gas: I. Automated exploitation of massive astrochemical model grids
- Submillimeter imaging of the Galactic Center starburst Sgr B2. Warm molecular, atomic, and ionized gas far from massive star-forming cores
- Direct estimation of electron density in the Orion Bar PDR from mm-wave carbon recombination lines
- [CII] line emission from Orion A. I. A template for extragalactic studies?
- A systematic observational study on Galactic interstellar ratio 18O/17O: I. C18O and C17O J=1-0 data analysis
- APEX-SEPIA660 Early Science: Gas at densities above cm towards OMC-1
- The ionization fraction in OMC-2 and OMC-3