Emission line ratios of Fe III as astrophysical plasma diagnostics
Abstract
Recent state-of-the-art calculations of A-values and electron impact excitation rates for Fe III are used in conjunction with the Cloudy modeling code to derive emission line intensity ratios for optical transitions among the fine-structure levels of the 3d configuration. A comparison of these with high resolution, high signal-to-noise spectra of gaseous nebulae reveals that previous discrepancies found between theory and observation are not fully resolved by the latest atomic data. Blending is ruled out as a likely cause of the discrepancies, because temperature- and density-independent ratios (arising from lines with common upper levels) match well with those predicted by theory. For a typical nebular plasma with electron temperature K and electron density , cascading of electrons from the levels , and plays an important role in determining the populations of lower levels, such as , which provide the density diagnostic emission lines of Fe III, such as - at 4658 \AA. Hence further work on the A-values for these transitions is recommended, ideally including measurements if possible. However, some Fe III ratios do provide reliable -diagnostics, such as 4986/4658. The Fe III cooling function calculated with Cloudy using the most recent atomic data is found to be significantly greater at 30000 K than predicted with the existing Cloudy model. This is due to the presence of additional emission lines with the new data, particularly in the 1000--4000 \AA\ wavelength region.
Keywords
Cite
@article{arxiv.1705.00207,
title = {Emission line ratios of Fe III as astrophysical plasma diagnostics},
author = {Sibasish Laha and Niall B. Tyndall and Francis P. Keenan and Connor P. Ballance and Catherine A. Ramsbottom and Gary J. Ferland and Alan Hibbert},
journal= {arXiv preprint arXiv:1705.00207},
year = {2017}
}
Comments
Accepted for publication in the ApJ