The in situ formation of molecular and warm ionised gas triggered by hot outflows
Abstract
Molecular outflows contributing to the matter cycle of star forming galaxies are now observed in small and large systems at low and high redshift. Their physical origin is still unclear. In most theoretical studies only warm ionised/neutral and hot gas outflowing from the interstellar medium is generated by star formation. We investigate an in-situ H2 formation scenario in the outflow using high-resolution simulations, including non-equilibrium chemistry and self-gravity, of turbulent, warm, and atomic clouds with densities 0.1, 0.5 and 1\,cm-3 exposed to a magnetised hot wind. For cloud densities 0.5\,cm-3 a magnetised wind triggers H2 formation before cloud dispersal. Up to 3 per cent of the initial cloud mass can become molecular on 10\,Myr time scales. The effect is stronger for winds with perpendicular B-fields and intermediate density clouds (nc 0.5\,cm-3). Here H2 formation can be boosted by up to one order of magnitude compared to isolated cooling clouds independent of self-gravity. Self-gravity preserves the densest clouds way past their 15\,Myr cloud crushing time scales. This model could provides a plausible in-situ origin for the observed molecular gas. Warm ionised gas is also generated, almost independent of the cloud density. The amount solely depend on the magnetic field configuration in the wind. For low density clouds (0.1\,cm-3), the forming warm ionised gas can be as much as 60 per cent of the initially atomic cloud mass. This could contribute to observations of outflows with ionised gas sensitive tracers.
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