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Numerical calibration of the HCN-star formation correlation

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Onus, Adam
Krumholz, Mark
Federrath, Christoph

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Oxford University Press

Abstract

HCN(1-0) emission traces dense gas and correlates very strongly with star formation rates (SFRs) on scales from small Milky Way clouds to whole galaxies. The observed correlation offers strong constraints on the efficiency of star formation in dense gas, but quantitative interpretation of this constraint requires a mapping from HCN emission to gas mass and density. In this paper, we provide the required calibration by post-processing high-resolution simulations of dense, star-forming clouds to calculate their HCN emission (LHCN) and to determine how that emission is related to the underlying gas density distribution and star formation efficiency. We find that HCN emission traces gas with a luminosity-weighted mean number density of 0.8-1.7 × 104 cm-3 and that HCN luminosity is related tomass of dense gas of ≳104 cm-3 with a conversion factor of αHCN ≈ 14M⊙/(K km s-1 pc2). We also measure a new empirical relationship between the SFR per global mean free-fall time (εff) and the SFR-HCN relationship, SFR/LHCN ≈ 2.0 × 10-7 (εff/0.01)1.1M⊙ yr-1/(K km s-1 pc2). The observed SFR-HCN correlation constrains εff ≈ 1 per cent with a factor of ~3 systematic uncertainty. The scatter in εff from cloud-to-cloud within the Milky Way is a factor of a few. We conclude that LHCN is an effective tracer of dense gas and that the IR-HCN correlation is a significant diagnostic of the microphysics of star formation in dense gas.

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Monthly Notices of the Royal Astronomical Society

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Open Access

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