A theoretical investigation of far-infrared fine structure lines at and of the origin of the [OIII]88/[CII]158 enhancement
arXiv:2410.18471 · doi:10.1051/0004-6361/202452718
Abstract
[Abridged] The [OIII]/[CII] and [OIII]/[NII] luminosity ratios have shown to be promising tracers of the ionisation state and gas-phase metallicity of the ISM. Observations of galaxies at redshift show peculiarly higher [OIII]/[CII] luminosity ratios compared to local sources. No model has so far successfully managed to match the observed emission from both [OIII] and [CII] as well as their ratio. We use Cloudy to model the [CII], [OIII], [NII] and [NIII] emission lines of Ponos: a high-resolution () cosmological zoom-in simulation of a galaxy at redshift , which is post-processed using kramses-rt. We modify Carbon, Nitrogen and Oxygen abundances in our Cloudy models to obtain C/O and N/O abundance ratios respectively lower and higher than Solar, more in line with recent high-z observational constraints. We find [OIII]/[CII] luminosity ratios that are a factor of higher compared to models assuming solar abundances. Additionally, we find an overall better agreement of the simulation with high-z observational constraints of the [CII]-SFR and [OIII]-SFR relations. This shows that a lower C/O abundance ratio is essential to reproduce the enhanced [OIII]/[CII] luminosity ratios observed at . By assuming a super-solar N/O ratio, motivated by recent JWST observations, our models yield an [OIII]/[NII] ratio of , which, according to current theoretical models, would be more appropriate for a galaxy with a lower ionisation parameter than the one we estimated for Ponos.
Accepted for publication in Astronomy & Astrophysics. 18 pages, 14 figures
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