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Deuterium fractionation as an evolutionary probe in massive protostellar/cluster cores
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Deuterium fractionation as an evolutionary probe in massive protostellar/cluster cores

Huei-Ru Chen, Sheng-Yuan Liu, Yu-Nung SuMei-Yan Wang
Astrophysical Journal, 卷.743(2), 196
12/2011

摘要

ISM: abundances ISM: clouds stars: formation Astronomy and Astrophysics Space and Planetary Science
Clouds of high infrared extinction are promising sites of massive star/cluster formation. A large number of cloud cores discovered in recent years allow for the investigation of a possible evolutionary sequence among cores in early phases. We have conducted a survey of deuterium fractionation toward 15 dense cores in various evolutionary stages, from high-mass starless cores to ultracompact H II regions, in the massive star-forming clouds of high extinction, G34.43+0.24, IRAS 18151-1208, and IRAS 18223-1243, with the Submillimeter Telescope. Spectra of N 2 H + (3-2), N 2 D + (3-2), and C 18 O (2-1) were observed to derive the deuterium fractionation of N 2 H + , D frac ≡ N(N 2 D + )/N(N 2 H + ), as well as the CO depletion factor for every selected core. Our results show a decreasing trend in D frac with both gas temperature and line width. Since colder and quiescent gas is likely to be associated with less evolved cores, larger D frac appears to correlate with early phases of core evolution. Such decreasing trend resembles the behavior of D frac in the low-mass protostellar cores and is consistent with several earlier studies in high-mass protostellar cores. We also find a moderate increasing trend of D frac with the CO depletion factor, suggesting that sublimation of ice mantles alters the competition in the chemical reactions and reduces D frac . Our findings suggest a general chemical behavior of deuterated species in both low- and high-mass protostellar candidates at early stages. In addition, upper limits to the ionization degree are estimated to be within 2 × 10 -7 and 5 × 10 -6 . The four quiescent cores have marginal field-neutral coupling and perhaps favor turbulent cooling flows. © 2011. The American Astronomical Society. All rights reserved.

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