Deuterated molecules as a probe of ionization fraction in dense interstellar clouds
arXiv:astro-ph/0204127 · doi:10.1016/S0032-0633(02)00074-0
Abstract
Deuterium fractionation in molecular ions, in particular HCO+, has been extensively used to estimate the degree of ionization in molecular clouds. This paper reviews recent work on ionization degree in homogeneous clouds. We will show that the N(DCO+)/N(HCO+) column density ratio furnishes a measurement of x(e) only in regions where CO is not significantly depleted, thus in the outer skirts of dense cloud cores. To probe x(e) deep inside the clouds, one has to gauge deuterium enhancement in molecular ions with parent species not affected by depletion (e.g. N2H+), and rely on chemical models which take into account the cloud density structure. Unlike N(DCO+)/N(HCO+), the N(N2D+)/N(N2H+) column density ratio is predicted to considerably increase with core evolution (and/or the amount of CO depletion), reaching large values (> 0.2) in cloud cores on the verge of forming a star.
25 pages, 5 figures, accepted for publication in the special issue on "Deuterium in The Universe" of Planetary and Space Science
References in corpus (8)
- Systematic Molecular Differentiation in Starless Cores
- Tracing the Mass during Low-Mass Star Formation. II. Modelling the Submillimeter Emission from Pre-Protostellar Cores
- Molecular Evolution in Collapsing Prestellar Cores
- The dust temperature distribution in prestellar cores
- Detection of FeO towards SgrB2
- Deuterated Ammonia in Galactic Protostellar Cores
- Gas phase production of NHD2 in L134N
- The initial conditions of isolated star formation: IV - C18O observations and modelling of the pre-stellar core L1689B
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