Chemically tracing the water snowline in protoplanetary disks with HCO
arXiv:2011.12319 · doi:10.1051/0004-6361/202039387
Abstract
[Abridged] Planet formation is expected to be enhanced around snowlines in protoplanetary disks, in particular around the water snowline. However, the close proximity of the water snowline to the host star and water in the Earth's atmosphere makes a direct detection of the water snowline in protoplanetary disks challenging. Following earlier work on protostellar envelopes, the aim of this research is to investigate the validity of HCO and HCO, as tracers of the water snowline in protoplanetary disks, as HCO is destroyed by gas-phase water. Two small chemical networks are used to predict the HCO abundance in a typical Herbig Ae disk. Subsequently, the corresponding emission profiles are modelled for HCO and HCO , which provides the best balance between brightness and optical depth effects of the continuum emission. The HCO abundance jumps by two orders of magnitude just outside the water snowline at 4.5 AU. We find that the emission of HCO and HCO is ring-shaped due to three effects: destruction of HCO by gas-phase water, continuum optical depth, and molecular excitation effects. The presence of gas-phase water causes an additional drop of only 13% and 24% in the center of the disk, for HCO and HCO, respectively. For the much more luminous outbursting source V883Ori, our models predict that the effect of dust and excitation are not limiting if the snowline is located outside 40 AU. Our analysis of ALMA observations of HCO is consistent with the water snowline located around 100 AU. The HCO abundance drops steeply around the water snowline, but dust and excitation can conceal the drop in HCO emission due to the water snowline. Therefore, locating the water snowline with HCO in Herbig disks is very difficult, but it is possible for outbursting sources like V883Ori.
Accepted for publication in Astronomy and Astrophysics. 13 pages, 11 figures + appendices
References in corpus (24)
- Evidence of fast pebble growth near condensation fronts in the HL Tau protoplanetary disk
- The VLA/ALMA Nascent Disk and Multiplicity (VANDAM) Survey of Orion Protostars. A Statistical Characterization of Class 0 and I Protostellar Disks
- Planetesimal formation starts at the snow line
- H2O and OH gas in the terrestrial planet-forming zones of protoplanetary disks
- The Gould's Belt Distances Survey (GOBELINS) II. Distances and structure towards the Orion Molecular Clouds
- Imaging the water-snow line during a protostellar outburst
- Dust masses of young disks: constraining the initial solid reservoir for planet formation
- Setting the volatile composition of (exo)planet-building material. Does chemical evolution in disk midplanes matter?
- Gas density drops inside dust cavities of transitional disks around young stars observed with ALMA
- Dust Density Distribution and Imaging Analysis of Different Ice Lines in Protoplanetary Disks
- Robustness of N2H+ as tracer of the CO snowline
- Complex organic molecules in low-mass protostars on solar system scales -- I. Oxygen-bearing species
- CN rings in full protoplanetary disks around young stars as probes of disk structure
- The depletion of water during dispersal of planet-forming disk regions
- Chemical Modelling of Young Stellar Objects, I. Method and Benchmarks
- Chemistry in Disks. IX. Observations and modeling of HCO+ and DCO+ in DM Tau
- Chemical tracers of episodic accretion in low-mass protostars
- Stacking Spectra in Protoplanetary Disks: Detecting Intensity Profiles from Hidden Molecular Lines in HD 163296
- Analytical Formulas of Molecular Ion Abundances and N2H+ Ring in Protoplanetary Disks
- Molecular line emission from a protoplanetary disk irradiated externally by a nearby massive star
- Mass constraints for 15 protoplanetary disks from HD 1-0
- 13C17O suggests gravitational instability in the HL Tau disc
- Dust continuum emission and the upper limit fluxes of sub-millimeter water lines of the protoplanetary disk around HD 163296 observed by ALMA
- A high resolution mid-infrared survey of water emission from protoplanetary disks