H2S and SO2 detectability in Hot Jupiters: Sulfur species as indicator of metallicity and C/O ratio
arXiv:2208.00469 · doi:10.1051/0004-6361/202244647
Abstract
The high cosmic abundance and the intermediate volatility and chemical properties of sulfur allow the use of sulfur-bearing species as a tracer of the chemical processes in the atmospheres of hot Jupiter exoplanets. Nevertheless, despite its properties and relevance as a tracer of the giant planets' formation history, little attention has been paid to this species in the context of hot Jupiter atmospheres. Here we provide an overview of the abundances of sulfur-bearing species in hot Jupiter atmospheres under different conditions and explore their observability. We use the photochemical kinetics code VULCAN to model hot Jupiter atmospheric disequilibrium chemistry. Transmission spectra for these atmospheres are created using the modelling framework ARCiS. We vary model parameters such as the diffusion coefficient, and we study the importance of photochemistry on the resulting mixing ratios. Furthermore, we vary the chemical composition of the atmosphere by increasing the metallicity from solar to ~10 times solar. We also explore different C/O ratios. We find that H2S and SO2 are the best candidates for detection between 1 and 10 micron, using a spectral resolution that is representative of the instruments on board the JWST. H2S is easiest to detect at an equilibrium temperature of ~1500 K and C/O ratios between 0.7 and 0.9, with the ideal value increasing slightly for increasing metallicity. SO2 is most likely to be detected at an equilibrium temperature of ~1000 K at low C/O ratios and high metallicities. Nevertheless, among these two molecules, we expect SO2 detection to be more common, as it is detectable in scenarios more favoured by formation models. We conclude that H2S and SO2 will most likely be detected in the coming years with the JWST and that the detection of these species will provide information on atmospheric processes and planet formation scenarios.
Accepted for publication in A&A
References in corpus (9)
- On the radiative equilibrium of irradiated planetary atmospheres
- Atmospheric Sulfur Photochemistry on Hot Jupiters
- VULCAN: an Open-Source, Validated Chemical Kinetics Python Code for Exoplanetary Atmospheres
- Modeling Sulfur Depletion in Interstellar Clouds
- TMC-1, the starless core sulfur factory: Discovery of NCS, HCCS, H2CCS, H2CCCS, and C4S and detection of C5S
- The ARCiS framework for Exoplanet Atmospheres: Modelling Philosophy and Retrieval
- The ARCiS framework for Exoplanet Atmospheres: The Cloud Transport Model
- The SVS13-A Class I chemical complexity as revealed by S-bearing species. SOLIS XIII
- Modeling synthetic spectra for transiting extrasolar giant planets: detectability of HS and PH with JWST
Cited by in corpus (18)
- Early Release Science of the Exoplanet WASP-39b with JWST NIRSpec G395H
- Photochemically-produced SO in the atmosphere of WASP-39b
- SO2, silicate clouds, but no CH4 detected in a warm Neptune
- Sulphur dioxide in the mid-infrared transmission spectrum of WASP-39b
- Volatile-to-sulfur Ratios Can Recover a Gas Giant's Accretion History
- Hints of a sulfur-rich atmosphere around the 1.6 R Super-Earth L98-59 d from JWST NIRSpec G395H transmission spectroscopy
- Nitrogen as a Tracer of Giant Planet Formation. I.: A Universal Deep Adiabatic Profile and Semi-analytical Predictions of Disequilibrium Ammonia Abundances in Warm Exoplanetary Atmospheres
- Hot exoplanetary atmospheres in 3D
- Jupiter-like uniform metal enrichment in a system of multiple giant exoplanets
- Cloud and Haze Parameterization in Atmospheric Retrievals: Insights from Titan's Cassini Data and JWST Observations of Hot Jupiters
- IGRINS observations of WASP-127 b: HO, CO, and super-Solar atmospheric metallicity in the inflated sub-Saturn
- Constraining the formation of WASP-39b using JWST transit spectroscopy
- H2S ice sublimation dynamics: experimentally constrained binding energies, entrapment efficiencies, and snowlines
- GEMS JWST: Transmission spectroscopy of TOI-5205b reveals significant stellar contamination and a metal-poor atmosphere
- A new pathway to SO: Revealing the NUV driven sulfur chemistry in hot gas giants
- Detection of CO, CO, and HO in the atmosphere of the warm sub-Saturn HAT-P-12b
- Reliability of 1D radiative-convective photochemical-equilibrium retrievals on transit spectra of WASP-107b
- A 1.48-2.48 m R=28000 spectroscopic atlas of the L7.5 and T0.5 components of the nearest pair of brown dwarfs: Luhman 16AB