Ammonium hydrosulfide (NH4SH) as a potentially significant sulfur sink in interstellar ices
arXiv:2410.02860 · doi:10.1051/0004-6361/202451383
Abstract
Sulfur is depleted with respect to its cosmic standard abundance in dense star-forming regions. It has been suggested that this depletion is caused by the freeze-out of sulfur on interstellar dust grains, but the observed abundances and upper limits of sulfur-bearing ices remain too low to account for all of the missing sulfur. Toward the same environments, a strong absorption feature at 6.85 m is observed, but its long-standing assignment to the NH4+ cation remains tentative. We investigate the plausibility of NH4SH salt serving as a sulfur reservoir and a carrier of the 6.85 m band in interstellar ices by characterizing its IR signatures and apparent band strengths in water-rich laboratory ice mixtures and using this laboratory data to constrain NH4SH abundances in observations of 4 protostars and 2 cold dense clouds. The observed 6.85 m feature is fit well with the laboratory NH4SH:H2O ice spectra. NH4+ column densities obtained from the 6.85 m band range from 8-23% with respect to H2O toward the sample of protostars and dense clouds. The redshift of the 6.85 m feature correlates with higher abundances of NH4+ with respect to H2O in both the laboratory data presented here and observational data of dense clouds and protostars. The apparent band strength of the SH- feature is likely too low for the feature to be detectable in the spectrally busy 3.9 m region, but the 5.3 m NH4+ + SH- R combination mode may be an alternative means of detection. Its tentative assignment adds to mounting evidence supporting the presence of NH4+ salts in ices and is the first tentative observation of the SH- anion toward interstellar ices. If the majority (80-85%) of the NH4+ cations quantified toward the investigated sources in this work are bound to SH- anions, then NH4SH salts could account for up to 17-18% of their sulfur budgets.
Accepted for publication in A&A. 20 pages, 14 figures, and 7 tables in the main text; 15 pages, 17 figures, and 10 tables in the appendix
References in corpus (16)
- The Near-Infrared Spectrograph (NIRSpec) on the James Webb Space Telescope I. Overview of the instrument and its capabilities
- Non-thermal desorption from interstellar dust grains via exothermic surface reactions
- An Ice Age JWST inventory of dense molecular cloud ices
- The Near-Infrared Spectrograph (NIRSpec) on the James Webb Space Telescope III. Integral-field spectroscopy
- Modeling Sulfur Depletion in Interstellar Clouds
- Spatial mapping of ices in the Oph-F core: A direct measurement of CO depletion and the formation of CO2
- A new study of an old sink of sulfur in hot molecular cores: the sulfur residue
- A new look at sulphur chemistry in hot cores and corinos
- LIDA - The Leiden Ice Database for Astrochemistry
- Abundant ammonium hydrosulphide embedded in cometary dust grains
- Bottlenecks to interstellar sulfur chemistry: Sulfur-bearing hydrides in UV-illuminated gas and grains
- Properties of protostars in the Elephant Trunk globule IC 1396A
- Kinetics and mechanisms of the acid-base reaction between NH and HCOOH in interstellar ice analogs
- The hunt for formamide in interstellar ices: A toolkit of laboratory infrared spectra in astronomically relevant ice mixtures and comparisons to ISO, Spitzer, and JWST observations
- Quantifying the chemical desorption of HS and PH from amorphous water ice surfaces
- Theoretical modelling of the adsorption of neutral and charged sulphur-bearing species on to olivine nanoclusters
Cited by in corpus (5)
- HDO ice detected toward an isolated low-mass protostar with JWST
- H2S ice sublimation dynamics: experimentally constrained binding energies, entrapment efficiencies, and snowlines
- Protostars at Subsolar Metallicity: First Detection of Large Solid-state Complex Organic Molecules in the Large Magellanic Cloud
- Fine-tuning the complex organic molecule formation: sulfur and CO ice as regulators of surface chemistry
- Survey of (sub)mm water masers in low-mass star-forming regions