Molecular tracers of planet formation in the atmospheres of hot Jupiters
arXiv:2112.04930 · doi:10.1093/mnras/stac2106
Abstract
The atmospheric chemical composition of a hot Jupiter can lead to insights into where in its natal protoplanetary disk it formed and its subsequent migration pathway. We use a 1-D chemical kinetics code to compute a suite of models across a range of elemental abundances to investigate the resultant abundances of key molecules in hot jupiter atmospheres. Our parameter sweep spans metallicities between 0.1x and 10x solar values for the C/H, O/H and N/H ratios, and equilibrium temperatures of 1000K and 2000K. We link this parameter sweep to the formation and migration models from previous works to predict connections between the atmospheric molecular abundances and formation pathways, for the molecules \ce{H2O}, \ce{CO}, \ce{CH4}, \ce{CO2}, \ce{HCN} and \ce{NH3}. We investigate atmospheric \ce{H2O} abundances in eight hot Jupiters reported in the literature. All eight planets fall within our predicted ranges for various formation models, however six of them are degenerate between multiple models and, hence, require additional molecular detections for constraining their formation histories. The other two planets, HD 189733~b and HD 209458~b, have water abundances that fall within ranges expected from planets that formed beyond the \ce{CO2} snowline. Finally, we investigate the detections of \ce{H2O}, \ce{CO}, \ce{CH4}, \ce{CO2}, \ce{HCN} and \ce{NH3} in the atmosphere of HD 209458~b and find that, within the framework of our model, the abundances of these molecules best match with a planet that formed between the \ce{CO2} and \ce{CO} snowlines and then underwent disk-free migration to reach its current location.
14 pages, 11 figures
References in corpus (29)
- On the radiative equilibrium of irradiated planetary atmospheres
- A Precise Water Abundance Measurement for the Hot Jupiter WASP-43b
- The imprint of exoplanet formation history on observable present-day spectra of hot Jupiters
- Towards Chemical Constraints on Hot Jupiter Migration
- The Two Modes of Gas Giant Planet Formation
- A chemical model for the atmosphere of hot Jupiters
- Chemical enrichment of giant planets and discs due to pebble drift
- Mass-Metallicity Trends in Transiting Exoplanets from Atmospheric Abundances of HO, Na, and K
- VULCAN: an Open-Source, Validated Chemical Kinetics Python Code for Exoplanetary Atmospheres
- A consistent retrieval analysis of 10 Hot Jupiters observed in transmission
- Tracing the formation history of giant planets in protoplanetary disks with Carbon, Oxygen, Nitrogen and Sulphur
- Five carbon- and nitrogen-bearing species in a hot giant planet's atmosphere
- H2O abundances in the atmospheres of three hot Jupiters
- Planet formation with envelope enrichment: new insights on planetary diversity
- Jupiter's composition suggests its core assembled exterior to the N2 snowline
- Thermal desorption of circumstellar and cometary ice analogs
- Disk evolution, element abundances and cloud properties of young gas giant planets
- Composition of Early Planetary Atmospheres I: Connecting Disk Astrochemistry to the Formation of Planetary Atmospheres
- Effects of Bulk Composition on The Atmospheric Dynamics on Close-in Exoplanets
- The ARCiS framework for Exoplanet Atmospheres: Modelling Philosophy and Retrieval
- C/O and O/H Ratios Suggest Some Hot Jupiters Originate Beyond the Snow Line
- Jupiter formed as a pebble pile around the N ice line
- Cloud property trends in hot and ultra-hot giant gas planets (WASP-43b, WASP-103b, WASP-121b, HAT-P-7b, and WASP-18b)
- HyDRA-H: Simultaneous Hybrid Retrieval of Exoplanetary Emission Spectra
- Signatures of Nitrogen Chemistry in Hot Jupiter Atmospheres
- Sulfur Chemistry in the Atmospheres of Warm and Hot Jupiters
- Implementation of disequilibrium chemistry to spectral retrieval code ARCiS and application to sixteen exoplanet transmission spectra: Indication of disequilibrium chemistry for HD 209458b and WASP-39b
- A chemical kinetics code for modelling exoplanetary atmospheres
- KELT-11 b: Abundances of water and constraints on carbon-bearing molecules from the Hubble transmission spectrum