The first estimation of the ionization fraction in dense and translucent molecular gas across Orion B
Rattachement africain : fr, cl, es, us, gb. Niveau de preuve : code pays fourni par la source.
Le résumé fourni par la source
Context . The ionization fraction ( f e = n e / n H ) represents a fundamental parameter of the gas in the interstellar medium. However, estimating f e relies on a deep knowledge of the underlying chemistry of molecular gas as well as observations of atomic recombination lines and electron-sensitive molecular emission, such as deuterated isotopologs of HCO + and N 2 H + , which are only detectable in the dense cores. Until now, it has been challenging to constrain the ionization fraction in the interstellar gas over a large areas because of the observational limitations on these tracers and chemistry models. Aims . Recent models have provided a set of molecular lines whose ratios (intensities and column densities) can be used to trace f e in different environments of molecular clouds. Here, we use a set of various molecular lines typically detected in the 3−4 mm range to constrain the ionization fraction across the Orion B giant molecular cloud. In this work, we derived the ionization fraction for dense and translucent gas, and we investigated its variation with the density of the gas, n , and the strength of the far-ultraviolet radiation field, G 0 , with their ratio G 0 / n . Methods . We present our results for the ionization fraction across one square degree in Orion B derived using analytical models as well as observational intensity and column density ratios of CN(1−0)/N 2 H + (1−0), 13 CO(1−0)/HCO + (1−0), and C 18 O(1−0)/HCO + (1−0) in the dense and shielded medium ( A v ≥ 10 mag). We also used ratios of C 2 H(1−0)/HNC(1−0), C 2 H(1−0)/HCN(1−0), and C 2 H(1−0)/CN(1−0) in the translucent gas (2 mag ≤ A v ≤ 6 mag). Results . We find that the ionization fraction is within the range of 10 −5.5 −10 −4 for the translucent medium and 10 −8 −10 −6 for the dense medium. Our results show that the inferred f e values are sensitive to the value of G 0 , especially in the dense, highly UV-illuminated gas. We also find that the ionization fraction in dense and translucent gas decreases with an increasing volume density ( f e ∝ n −0.227 for dense gas and f e ∝ n −0.3 in translucent gas). It increases with G 0 , which is a consequence of how sensitive the emission of selected molecular lines (e.g., CN and HCO + ) is to the UV radiation field. In the case of the translucent medium, we did not find any significant difference in the ionization fraction computed from different line ratios. The range of f e values found in translucent gas implies that the electron excitation of HCN and HNC becomes significant in this regime. Conclusions . In dense and shielded gas, we recommend using CN(1−0)/N 2 H + (1−0) to derive an upper limit on the ionization fraction f e , along with C 18 O(1−0)/HCO + (1−0) to set constraints on the lower limit. In a translucent medium, C 2 H(1−0)/HNC(1−0) serves as a good tracer of f e . The moderately high f e values found in translucent gas are consistent with the C + /CI/CO transition regime, while the values we find in the dense gas are sufficient to couple the gas with the magnetic field.
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Le contrôle bibliographique ouvert
DOI retrouvé dans Crossref DOI retrouvé ; titre concordant.
- Titre Crossref
- The first estimation of the ionization fraction in dense and translucent molecular gas across Orion B
- Date Crossref
- 01/10/2025
- Éditeur
- EDP Sciences
- Type
- journal-article
Ce recoupement confirme des métadonnées liées au DOI. Il ne confirme ni la méthode ni les conclusions de l’étude, et il ne compte pas comme une seconde source scientifique indépendante.
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