First detection of gas-phase ammonia in a planet-forming disk
arXiv:1604.00323 · doi:10.1051/0004-6361/201628172
Abstract
Nitrogen chemistry in protoplanetary disks and the freeze-out on dust particles is key to understand the formation of nitrogen bearing species in early solar system analogs. So far, ammonia has not been detected beyond the snowline in protoplanetary disks. We aim to find gas-phase ammonia in a protoplanetary disk and characterize its abundance with respect to water vapor. Using HIFI on the Herschel Space Observatory we detect, for the first time, the ground-state rotational emission of ortho-NH in a protoplanetary disk, around TW Hya. We use detailed models of the disk's physical structure and the chemistry of ammonia and water to infer the amounts of gas-phase molecules of these species. We explore two radial distributions ( confined to 60 au like the millimeter-sized grains) and two vertical distributions (near the midplane where water is expected to photodesorb off icy grains) to describe the (unknown) location of the molecules. These distributions capture the effects of radial drift and vertical settling of ice-covered grains. We use physical-chemical models to reproduce the fluxes with assuming that water and ammonia are co-spatial. We infer ammonia gas-phase masses of 0.7-11.0 10 g. For water, we infer gas-phase masses of 0.2-16.0 10 g. This corresponds to NH/HO abundance ratios of 7\%-84\%, assuming that water and ammonia are co-located. Only in the most compact and settled adopted configuration is the inferred NH/HO consistent with interstellar ices and solar system bodies of 5\%-10\%. Volatile release in the midplane may occur via collisions between icy bodies if the available surface for subsequent freeze-out is significantly reduced, e.g., through growth of small grains into pebbles or larger.
References in corpus (8)
- The chemical history of molecules in circumstellar disks. I. Ices
- Constraining the X-ray and Cosmic Ray Ionization Chemistry of the TW Hya Protoplanetary Disk: Evidence for a Sub-interstellar Cosmic Ray Rate
- The Impact of Dust Evolution and Photoevaporation on Disk Dispersal
- An Inner Hole in the Disk around TW Hydrae Resolved in 7 Millimeter Dust Emission
- Herschel images of Fomalhaut. An extrasolar Kuiper Belt at the height of its dynamical activity
- High spatial resolution mid-infrared observations of the low-mass young star TW Hya
- Dynamical Evolution of the TW Hya Association
- The Effects of Initial Abundances on Nitrogen in Protoplanetary Disks
Cited by in corpus (40)
- 2021 Census of Interstellar, Circumstellar, Extragalactic, Protoplanetary Disk, and Exoplanetary Molecules
- 2018 Census of Interstellar, Circumstellar, Extragalactic, Protoplanetary Disk, and Exoplanetary Molecules
- ExoMol molecular line lists XXXV: a rotation-vibration line list for hot ammonia
- Turbulence in the TW Hya Disk
- Origin of the RNA World: The Fate of Nucleobases in Warm Little Ponds
- Molecular abundances and C/O ratios in chemically evolving planet-forming disk midplanes
- Water in star-forming regions (WISH): Physics and chemistry from clouds to disks as probed by Herschel spectroscopy
- First detection of HS in a protoplanetary disk. The dense GG Tau A ring
- The chemistry of disks around T Tauri and Herbig Ae/Be stars
- Chemically tracing the water snowline in protoplanetary disks with HCO
- Disk masses around solar-mass stars are underestimated by CO observations
- A novel way of measuring the gas disk mass of protoplanetary disks using N2H+ and C18O
- Gas mass tracers in protoplanetary disks: CO is still the best
- Candidate Water Vapor Lines to Locate the HO Snowline through High-Dispersion Spectroscopic Observations II. The Case of a Herbig Ae Star
- NH_3(1_0-0_0) in the pre-stellar core L1544
- Retrieval study of cool, directly imaged exoplanet 51 Eri b
- Constraining the radial drift of millimeter-sized grains in the protoplanetary disks in Lupus
- Missing water in Class I protostellar disks
- Dust-to-gas ratio resurgence in circumstellar disks due to the formation of giant planets: the case of HD 163296
- Multipole-moment effects in ion-molecule reactions at low temperatures: part I -- Ion-dipole enhancement of the rate coefficients of the He + NH and He + ND reactions at collision energies near K
- The ortho-to-para ratio of water in interstellar clouds
- The nitrogen carrier in protoplanetary disks
- H2CO ortho-to-para ratio in the protoplanetary disk HD 163296
- Resolved molecular line observations reveal an inherited molecular layer in the young disk around TMC1A
- Candidate Water Vapor Lines to Locate the Snowline through High-dispersion Spectroscopic Observations. III. Submillimeter and Lines
- The water line emission and ortho-to-para ratio in the Orion Bar photon-dominated region
- Circumstellar ammonia in oxygen-rich evolved stars
- The TW Hya Rosetta Stone Project IV: A hydrocarbon rich disk atmosphere
- High-Resolution Mid-Infrared Spectroscopy of GV Tau N: Surface Accretion and Detection of Ammonia in a Young Protoplanetary Disk
- Physical conditions for dust grain alignment in Class 0 protostellar cores I. Observations of dust polarization and molecular irradiation tracers
- High-resolution absorption measurements of NH3 at high temperatures: 2100 - 5500
- Gravitational instabilities in a protosolar-like disc III: molecular line detection and sensitivities
- /SPIRE Observations of Water Production Rates and Ortho-to-Para Ratios in Comets
- Ammonia, carbon dioxide and the non-detection of the 2152 cm CO band
- A major asymmetric ice trap in a planet-forming disk: II. prominent SO and SO2 pointing to C/O < 1
- Gas kinematics of key prebiotic molecules in GV Tau N revealed with an ALMA, PdBI, and Herschel synergy
- The when and where of water in the history of the universe
- Role of NH3 Binding Energy in the Early Evolution of Protostellar Cores
- A Pathway for Collisional Planetesimal Growth in the Ice-Dominant Regions of Protoplanetary Disks
- Protoplanetary Disk Chemistry