Tracers of the ionization fraction in dense and translucent gas: I. Automated exploitation of massive astrochemical model grids
arXiv:2007.13593 · doi:10.1051/0004-6361/202038040
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 densities) and the ionization fraction. We estimate the predictive power of each potential tracer by training a Random Forest model to predict the ionization fraction from that tracer, based on these model grids. In both translucent medium and cold dense medium conditions, several observable tracers with very good predictive power for the ionization fraction are found. Several tracers in cold dense medium conditions are found to be better and more widely applicable than the traditional DCO+/HCO+ ratio. We also provide simpler analytical fits for estimating the ionization fraction from the best tracers, and for estimating the associated uncertainties. We discuss the limitations of the present study and select a few recommended tracers in both types of conditions. The method presented here is very general and can be applied to the measurement of any other quantity of interest (cosmic ray flux, elemental abundances, etc.) from any type of model (PDR models, time-dependent chemical models, etc.). (abridged)
29 pages, 15 figures. Accepted for publication in A&A
References in corpus (17)
- H3+ in Diffuse Interstellar Clouds: a Tracer for the Cosmic-Ray Ionization Rate
- The anatomy of the Orion B Giant Molecular Cloud: A local template for studies of nearby galaxies
- Low sulfur depletion in the Horsehead PDR
- Isotopic fractionation of carbon, deuterium and nitrogen : a full chemical study
- The chemistry and spatial distribution of small hydrocarbons in UV-irradiated molecular clouds: the Orion Bar PDR
- Ethynyl (C2H) in massive star formation: Tracing the initial conditions?
- Turbulence and star formation efficiency in molecular clouds: solenoidal versus compressive motions in Orion B
- Discovery of Interstellar CF+
- Spatially resolved l-c3h+ emission in the horsehead photodissociation region: Further evidence for a top-down hydrocarbon chemistry
- Electron Excitation of High Dipole Moment Molecules Reexamined
- The Ionization Fraction of Barnard 68: Implications for Star and Planet Formation
- Dissecting the molecular structure of the Orion B cloud: Insight from Principal Component Analysis
- C18O, 13CO, and 12CO abundances and excitation temperatures in the Orion B molecular cloud: An analysis of the precision achievable when modeling spectral line within the Local Thermodynamic Equilibrium approximation
- A dynamically young, gravitationally stable network of filaments in Orion B
- On the Inference of the Cosmic Ray Ionization Rate from the HCO-to-DCO Abundance Ratio: The Effect of Nuclear Spin
- Direct estimation of electron density in the Orion Bar PDR from mm-wave carbon recombination lines
- Quantitative inference of the column densities from 3 mm molecular emission: A case study towards Orion B
Cited by in corpus (17)
- Magnetically regulated collapse in the B335 protostar? II. Observational constraints on gas ionization and magnetic field coupling
- Probing the physics of star formation (ProPStar): I. First resolved maps of the electron fraction and cosmic-ray ionization rate in NGC 1333
- Anomalous HCN emission from warm giant molecular clouds
- Astrochemical modelling of infrared dark clouds
- Gas kinematics around filamentary structures in the Orion B cloud
- Neural network-based emulation of interstellar medium models
- History-independent tracers: Forgetful molecular probes of the physical conditions of the dense interstellar medium
- The ionization fraction in OMC-2 and OMC-3
- Quantifying the informativity of emission lines to infer physical conditions in giant molecular clouds. I. Application to model predictions
- Chemical variations across the TMC-1 boundary: molecular tracers from translucent phase to dense phase
- Toward a robust physical and chemical characterization of heterogeneous lines of sight: The case of the Horsehead nebula
- Unmasking the physical information inherent to interstellar spectral line profiles with Machine Learning. I. Application of LTE to HCN and HNC transitions
- Deuterium fractionation in cold dense cores in the low-mass star forming region L1688
- Density asymmetry and wind velocities in the orbital plane of the symbiotic binary EG Andromedae
- Beetroots: spatially-regularized Bayesian inference of physical parameter maps -- Application to Orion
- Observations of Carbon Radio Recombination Lines with the NenuFAR telescope. I. Cassiopeia A and Cygnus A
- Observations of ionized carbon towards the -ray-bright supernova remnant RX J1713.7-3946