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Far-Infrared Line Diagnostics: Improving N/O Abundance Estimates for Dusty Galaxies

Astrophysics of Galaxies 2021-03-03 v1

Abstract

The Nitrogen-to-Oxygen (N/O) abundance ratio is an important diagnostic of galaxy evolution since the ratio is closely tied to the growth of metallicity and the star formation history in galaxies. Estimates for the N/O ratio are traditionally accomplished with optical lines that could suffer from extinction and excitation effects, so the N/O ratio is arguably measured better through far-infrared (far-IR) fine-structure lines. Here we show that the [N III]57μ\mum/[O III]52μ\mum line ratio, denoted N3O3N3O3, is a physically robust probe of N/O. This parameter is insensitive to gas temperature and only weakly dependent on electron density. Though it has a dependence on the hardness of the ionizing radiation field, we show that it is well corrected by including the [Ne III]15.5μ\mum/[Ne II]12.8μ\mum line ratio. We verify the method, and characterize its intrinsic uncertainties by comparing the results to photoionization models. We then apply our method to a sample of nearby galaxies using new observations obtained with SOFIA/FIFI-LS in combination with available Herschel/PACS data, and the results are compared with optical N/O estimates. We find evidence for a systematic offset between the far-IR and optically derived N/O ratio. We argue this is likely due to that our far-IR method is biased towards younger and denser H II regions, while the optical methods are biased towards older H II regions as well as diffuse ionized gas. This work provides a local template for studies of ISM abundance in the early Universe.

Keywords

Cite

@article{arxiv.2012.10054,
  title  = {Far-Infrared Line Diagnostics: Improving N/O Abundance Estimates for Dusty Galaxies},
  author = {Bo Peng and Cody Lamarche and Gordon Stacey and Thomas Nikola and Amit Vishwas and Carl Ferkinhoff and Christopher Rooney and Catherine Ball and Drew Brisbin and James Higdon and Sarah Higdon},
  journal= {arXiv preprint arXiv:2012.10054},
  year   = {2021}
}

Comments

23 pages, 14 figures. Accepted by ApJ