Tracers of the ionization fraction in dense and translucent gas: I. Automated exploitation of massive astrochemical model grids
Emeric Bron (1), Evelyne Roueff (1), Maryvonne Gerin (1), J\'er\^ome, Pety (1, 2), Pierre Gratier (3), Franck Le Petit (1), Viviana Guzman (4),, Jan H. Orkisz (5), Victor de Souza Magalhaes (2), Mathilde Gaudel (1), Maxime, Vono (6), S\'ebastien Bardeau (2), Pierre Chainais (7)

TL;DR
This study develops a machine learning-based method to identify effective observable tracers of ionization fraction in interstellar gas, surpassing traditional methods and applicable to various astrophysical models.
Contribution
It introduces a novel approach using astrochemical model grids and Random Forests to find and validate new tracers of ionization fraction in different interstellar conditions.
Findings
Several new tracers outperform traditional DCO+/HCO+ ratio.
The method achieves high predictive accuracy for ionization fraction.
Analytical fits for tracer-based estimations are provided.
Abstract
The ionization fraction plays a key role in the physics and chemistry of the neutral interstellar medium, from controlling the coupling of the gas to the magnetic field to allowing fast ion-neutral reactions that drive interstellar chemistry. Most estimations of the ionization fraction have relied on deuterated species such as DCO+, whose detection is limited to dense cores representing an extremely small fraction of the volume of the giant molecular clouds they are part of. As large field-of-view hyperspectral maps become available, new tracers may be found. We search for the best observable tracers of the ionization fraction based on a grid of astrochemical models. We build grids of models that sample randomly a large space of physical conditions (unobservable quantities such as gas density, temperature, etc.) and compute the corresponding observables (line intensities, column…
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Taxonomy
TopicsAstrophysics and Star Formation Studies · Atmospheric Ozone and Climate · Molecular Spectroscopy and Structure
