The Radio Properties of Extreme Coronal Line Emitters: Constraints on the Sub-parsec Environment
Noah Franz, Kate D. Alexander, Collin T. Christy, Tanmoy Laskar, Stefanie Komossa, Enrico Ramirez-Ruiz, Jean Somalwar, Edo Berger, Ryan Chornock, Fabio De Colle, Gavin Farley, Megan Newsome, B. Ashley VanderLey
astro-ph.HE, astro-ph.GA
Submitted: 2026-07-10
Comments: 24 pages, 5 figures. Submitted to ApJ. Comments welcome
Code: https://github.com/noahfranz13/radio-ecle
License: http://creativecommons.org/licenses/by/4.0/
The gist: A tiny fraction (1%) of galaxies display luminous, high-ionization metal emission lines, which may be persistent or variable.
Terminology
Abstract
A tiny fraction (1%) of galaxies display luminous, high-ionization metal emission lines, which may be persistent or variable. These extreme coronal lines (ECLs) are produced when soft X-ray photons intercept dense gas (n 10 6-7 cm-3). The high X-ray flux required implicates intense nuclear activity, likely originating from tidal disruption events (TDEs) and active galactic nuclei (AGN). As ECLs are rarely seen even within these classes, their production may also require specific environmental conditions, but the details remain unclear (e.g., the geometry and volume filling factor of the ECL-producing gas). Here, we present the radio properties of a population of 27 low-redshift (z<0.3) ECL emitting galaxies (ECLEs), providing a unique and previously unexplored probe of the properties of the circumnuclear medium (CNM; 1 pc from the black hole) in these systems. We find that about 50% of ECLEs produce radio synchrotron emission with luminosity and evolution consistent with TDEs and/or AGN. Radio spectral modeling of four ECLEs reveals that the ECL-producing region is (1) clumpy with a low volume filling factor (10-5 f V 10-2) and (2) likely distinct from the radio emitting region (implying, e.g., a clumpy toroidal geometry). For time-variable ECLEs, these are some of the first observational constraints on the CNM geometry in formerly quiescent galactic nuclei. The unique nature of ECLEs makes them an excellent high-energy laboratory to connect the physics of accretion, photoionization, and feedback in galactic nuclei, thus motivating continued multi-wavelength monitoring.
Sources
- The rate of extreme coronal line emitters in the Baryon Oscillation Spectroscopic Survey LOWZ sample
- AT 2018dyk: tidal disruption event or active galactic nucleus? Follow-up observations of an extreme coronal line emitter with the Dark Energy Spectroscopic Instrument
- Early results in the search for extreme coronal line emitters with the Dark Energy Spectroscopic Instrument
- Resolving the sub-parsec circumnuclear density profiles of quiescent galaxies: Evidence for Bondi accretion flows in tidal disruption event hosts
- The DSA-2000 -- A Radio Survey Camera
- Galaxy scale consequences of tidal disruption events: extended emission line regions, extreme coronal lines and infrared-to-optical light echoes
- Interpretation of the emission line spectra of Seyfert 2 galaxies by multi-component photoionization models
- Mapping the nuclear environments of extreme coronal line emitting galaxies
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