HCN J=1−0 emission is commonly used as a dense gas tracer, thought to mainly arise from gas with densities ∼104−105cm−3. This has made it a popular tracer in star formation studies. However, there is increasing evidence from observational surveys of `resolved' molecular clouds that HCN can trace more diffuse gas. We investigate the relationship between gas density and HCN emission through post-processing of high resolution magnetohydrodynamical simulations of cloud-cloud collisions. We find that HCN emission traces gas with a mean volumetric density of ∼3×103cm−3 and a median visual extinction of ∼5mag. We therefore predict a characteristic density that is an order of magnitude less than the "standard" characteristic density of n∼3×104cm−3. Indeed, we find in some cases that there is clear HCN emission from the cloud even though there is no gas denser than this standard critical density. We derive luminosity-to-mass conversion factors for the amount of gas at AV>8 or at densities n>2.85×103cm−3 or n>3×104cm−3, finding values of αHCN=6.79,8.62 and 27.98M⊙(Kkms−1pc2), respectively. In some cases, the luminosity to mass conversion factor predicted mass in regions where in actuality there contains no mass.
@article{arxiv.2112.05543,
title = {On the density regime probed by HCN emission},
author = {Gerwyn H. Jones and Paul C. Clark and Simon C. O. Glover and Alvaro Hacar},
journal= {arXiv preprint arXiv:2112.05543},
year = {2023}
}