ALMA observations of doubly deuterated water: Inheritance of water from the prestellar environment
arXiv:2104.13411 · doi:10.1051/0004-6361/202140560
Abstract
Establishing the origin of the water D/H ratio in the Solar System is central to our understanding of the chemical trail of water during the star and planet formation process. Recent modeling suggests that comparisons of the DO/HDO and HDO/HO ratios are a powerful way to trace the chemical evolution of water and, in particular, determine whether the D/H ratio is inherited from the molecular cloud or established locally. We seek to determine the DO column density and derive the DO/HDO ratios in the warm region toward the low-mass Class 0 sources B335 and L483. The results are compared with astrochemical models and previous observations to determine their implications for the chemical evolution of water. We present ALMA observations of the DO transition at 316.8 GHz toward B335 and L483 at 0.5" ( 100 au) resolution, probing the inner warm envelope gas. The column densities of DO, HDO, and HO are determined by synthetic spectrum modeling and direct Gaussian fitting, under the assumption of a single excitation temperature and similar spatial extent for the three water isotopologs. DO is detected toward both sources in the inner warm envelope. The derived DO/HDO ratios is for L483 and for B335. The high DO/HDO ratios are a strong indication of chemical inheritance of water from the prestellar phase down to the inner warm envelope. This implies that the local cloud conditions in the prestellar phase, such as temperatures and timescales, determine the water chemistry at later stages and could provide a source of chemical differentiation in young systems. In addition, the observed DO/HO ratios support an observed dichotomy in the deuterium fractionation of water toward isolated and clustered protostars, namely, a higher D/H ratio toward isolated sources
Accepted for publication in A&A. Revision fixes typo in title
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