Deuteration of ammonia in the starless core Ophiuchus/H-MM1
Jorma Harju, Fabien Daniel, Olli Sipil\"a, Paola Caselli, Jaime E., Pineda, Rachel K. Friesen, Anna Punanova, Rolf G\"usten, Laurent Wiesenfeld,, Philip C. Myers, Alexandre Faure, Pierre Hily-Blant, Claire Rist, Erik, Rosolowsky, Stephan Schlemmer, and Yancy L. Shirley

TL;DR
This study investigates ammonia and its deuterated forms in a starless core, testing spin-state chemistry models through spectral observations and chemical modeling, revealing high deuterium fractionation and discrepancies in predicted spin ratios.
Contribution
It provides new observational data and insights into the spin-state chemistry of ammonia isotopologues in dense molecular cloud cores, challenging existing chemical models.
Findings
High deuterium fractionation ratios observed in the core.
Chemistry model approximately reproduces observed abundances.
Discrepancies in predicted ortho/para ratios suggest different reaction mechanisms.
Abstract
Ammonia and its deuterated isotopologues probe physical conditions in dense molecular cloud cores. With the aim of testing the current understanding of the spin-state chemistry of these molecules, we observed spectral lines of NH3, NH2D, NHD2, ND3, and N2D+ towards a dense, starless core in Ophiuchus with the APEX, GBT, and IRAM 30-m telescopes. The observations were interpreted using a gas-grain chemistry model combined with radiative transfer calculations. The chemistry model distinguishes between the different nuclear spin states of light hydrogen molecules, ammonia, and their deuterated forms. High deuterium fractionation ratios with NH2D/NH3=0.4, NHD2/NH2D=0.2, and ND3/NHD2=0.06 were found in the core. The observed ortho/para ratios of NH2D and NHD2 are close to the corresponding nuclear spin statistical weights. The chemistry model can approximately reproduce the observed…
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