Evidence that the Hot Jupiter WASP-77 A b Formed Beyond Its Parent Protoplanetary Disk's H2O Ice Line
arXiv:2201.08508 · doi:10.3847/1538-3881/ac4d9f
Abstract
Idealized protoplanetary disk and giant planet formation models have been interpreted to suggest that a giant planet's atmospheric abundances can be used to infer its formation location in its parent protoplanetary disk. It has recently been reported that the hot Jupiter WASP-77 A b has sub-solar atmospheric carbon and oxygen abundances with a solar C/O abundance ratio. Assuming solar carbon and oxygen abundances for its host star WASP-77 A, WASP-77 A b's atmospheric carbon and oxygen abundances possibly indicate that it accreted its envelope interior to its parent protoplanetary disk's H2O ice line from carbon-depleted gas with little subsequent planetesimal accretion or core erosion. We comprehensively model WASP-77 A and use our results to better characterize WASP-77 A b. We show that the photospheric abundances of carbon and oxygen in WASP-77 A are super-solar with a sub-solar C/O abundance ratio, implying that WASP-77 A b's atmosphere has significantly sub-stellar carbon and oxygen abundances with a super-stellar C/O ratio. Our result possibly indicates that WASP-77 A b's envelope was accreted by the planet beyond its parent protoplanetary disk's H2O ice line. While numerous theoretical complications to these idealized models have now been identified, the possibility of non-solar protoplanetary disk abundance ratios confound even the most sophisticated protoplanetary disk and giant planet formation models. We therefore argue that giant planet atmospheric abundance ratios can only be meaningfully interpreted relative to the possibly non-solar mean compositions of their parent protoplanetary disks as recorded in the photospheric abundances of their solar-type dwarf host stars.
16 pages, 3 figures, 4 tables; Accepted for publication at AJ
References in corpus (34)
- Array Programming with NumPy
- The Gaia mission
- Modules for Experiments in Stellar Astrophysics (MESA)
- The Transiting Exoplanet Survey Satellite
- The 2.5 m Telescope of the Sloan Digital Sky Survey
- Modules for Experiments in Stellar Astrophysics (MESA): Pulsating Variable Stars, Rotation, Convective Boundaries, and Energy Conservation
- Determining stellar atmospheric parameters and chemical abundances of FGK stars with iSpec
- Tidal Evolution of Close-in Extra-Solar Planets
- The imprint of exoplanet formation history on observable present-day spectra of hot Jupiters
- Modern stellar spectroscopy caveats
- Towards Chemical Constraints on Hot Jupiter Migration
- Three-dimensional mapping of the local interstellar medium with composite data
- SkyMapper Southern Survey: Second Data Release (DR2)
- Chemical enrichment of giant planets and discs due to pebble drift
- CERES: A Set of Automated Routines for Echelle Spectra
- The Solar Twin Planet Search. I. Fundamental parameters of the stellar sample
- Non-LTE line formation of Fe in late-type stars - III. 3D non-LTE analysis of metal-poor stars
- A solar C/O and sub-solar metallicity in a hot Jupiter atmosphere
- The temporal evolution of neutron-capture elements in the Galactic discs
- Composition of Early Planetary Atmospheres I: Connecting Disk Astrochemistry to the Formation of Planetary Atmospheres
- The GALAH Survey: Non-LTE departure coefficients for large spectroscopic surveys
- The solar silicon abundance based on 3D non-LTE calculations
- Connecting planet formation and astrochemistry: A main sequence for C/O in hot-exoplanetary atmospheres
- Grain opacity and the bulk composition of extrasolar planets. I. Results from scaling the ISM opacity
- Gas composition of main volatile elements in protoplanetary discs and its implication for planet formation
- Non-LTE analysis of K I in late-type stars
- Connecting planet formation and astrochemistry: Refractory carbon depletion leading to super-stellar C/O in giant planetary atmospheres
- Discrepancies between isochrone fitting and gyrochronology for exoplanet host stars?
- High-energy irradiation and mass loss rates of hot Jupiters in the solar neighborhood
- The effect of stellar activity on the spectroscopic stellar parameters of the young solar twin HIP 36515
- The composition of hot Jupiter atmospheres assembled within chemically evolved protoplanetary discs
- HIP 114328: a new refractory-poor and Li-poor solar twin
- Disentangling Hot Jupiters formation location from their chemical composition
- The Most Metal-poor Stars in the Inner Bulge
Cited by in corpus (10)
- Evidence for Hidden Nearby Companions to Hot Jupiters
- Tracing snowlines and C/O ratio in a planet-hosting disk: ALMA molecular line observations towards the HD169142 disk
- How drifting and evaporating pebbles shape giant planets III: The formation of WASP-77A b and Boötis b
- Elemental Abundances of the Super-Neptune WASP-107b's Host Star Using High-resolution, Near-infrared Spectroscopy
- VLTI/GRAVITY Observations and Characterization of the Brown Dwarf Companion HD 72946 B
- The chemical evolution of the solar neighbourhood for planet-hosting stars
- The Chemical Composition of Extreme-Velocity Stars
- Retrieving planet formation parameters of WASP-77Ab using SimAb
- ACCESS: Tentative detection of HO in the ground-based optical transmission spectrum of the low-density hot Saturn HATS-5b
- The Missing Link: Testing Galactic Chemical Evolution Models with the First Multi-Isotopic Abundances in Solar Twin Stars