Nuclear spin ratios of deuterated ammonia in prestellar cores. LAsMA observations of H-MM1 and Oph D
We determine the ortho/para ratios of NH2D and NHD2 in two dense, starless cores, where their formation is supposed to be dominated by gas-phase reactions, which, in turn, is predicted to result in deviations from the statistical spin ratios. The Large APEX sub-Millimeter Array (LAsMA) multibeam rec...
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Main Authors | , , , , , , , , |
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Format | Journal Article |
Language | English |
Published |
14.11.2023
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Subjects | |
Online Access | Get full text |
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Summary: | We determine the ortho/para ratios of NH2D and NHD2 in two dense, starless
cores, where their formation is supposed to be dominated by gas-phase
reactions, which, in turn, is predicted to result in deviations from the
statistical spin ratios. The Large APEX sub-Millimeter Array (LAsMA) multibeam
receiver of the Atacama Pathfinder EXperiment (APEX) telescope was used to
observe the prestellar cores H-MM1 and Oph D in Ophiuchus in the ground-state
lines of ortho and para NH2D and NHD2. The fractional abundances of these
molecules were derived employing 3D radiative transfer modelling, using
different assumptions about the abundance profiles as functions of density. We
also ran gas-grain chemistry models with different scenarios concerning proton
or deuteron exchanges and chemical desorption from grains to find out if one of
these models can reproduce the observed spin ratios. The observationally
deduced ortho/para ratios of NH2D and NHD2 are in both cores within 10% of
their statistical values 3 and 2, respectively, and taking 3-sigma limits,
deviations from these of about 20% are allowed. Of the chemistry models tested
here, the model that assumes proton hop (as opposed to full scrambling) in
reactions contributing to ammonia formation, and a constant efficiency of
chemical desorption, comes nearest to the observed abundances and spin ratios.
The nuclear spin ratios derived here are in contrast with spin-state chemistry
models that assume full scrambling in proton donation and hydrogen abstraction
reactions leading to deuterated ammonia. The efficiency of chemical desorption
influences strongly the predicted abundances of NH3, NH2D, and NHD2, but has a
lesser effect on their ortho/para ratios. For these the proton exchange
scenario in the gas is decisive. We suggest that this is because of rapid
re-processing of ammonia and related cations by gas-phase ion-molecule
reactions. |
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DOI: | 10.48550/arxiv.2311.08006 |