Sulfur dioxide in the mid-infrared transmission spectrum of WASP-39b
Author:
Powell DianaORCID, Feinstein Adina D.ORCID, Lee Elspeth K. H., Zhang MichaelORCID, Tsai Shang-MinORCID, Taylor JakeORCID, Kirk JamesORCID, Bell TaylorORCID, Barstow Joanna K.ORCID, Gao Peter, Bean Jacob L., Blecic Jasmina, Chubb Katy L., Crossfield Ian J. M., Jordan Sean, Kitzmann Daniel, Moran Sarah E., Morello GiuseppeORCID, Moses Julianne I.ORCID, Welbanks LuisORCID, Yang JeehyunORCID, Zhang XiORCID, Ahrer Eva-Maria, Bello-Arufe Aaron, Brande Jonathan, Casewell S. L., Crouzet NicolasORCID, Cubillos Patricio E., Demory Brice-Olivier, Dyrek AchrèneORCID, Flagg Laura, Hu RenyuORCID, Inglis JulieORCID, Jones Kathryn D., Kreidberg LauraORCID, López-Morales MercedesORCID, Lagage Pierre-Olivier, Meier Valdés Erik A.ORCID, Miguel Yamila, Parmentier VivienORCID, Piette Anjali A. A.ORCID, Rackham Benjamin V., Radica Michael, Redfield SethORCID, Stevenson Kevin B.ORCID, Wakeford Hannah R.ORCID, Aggarwal KeshavORCID, Alam Munazza K., Batalha Natalie M., Batalha Natasha E., Benneke BjörnORCID, Berta-Thompson Zach K., Brady Ryan P., Caceres ClaudioORCID, Carter Aarynn L.ORCID, Désert Jean-MichelORCID, Harrington JosephORCID, Iro Nicolas, Line Michael R., Lothringer Joshua D.ORCID, MacDonald Ryan J., Mancini LuigiORCID, Molaverdikhani KaranORCID, Mukherjee SagnickORCID, Nixon Matthew C.ORCID, Oza Apurva V., Palle EnricORCID, Rustamkulov ZafarORCID, Sing David K.ORCID, Steinrueck Maria E., Venot OliviaORCID, Wheatley Peter J.ORCID, Yurchenko Sergei N.
Abstract
AbstractThe recent inference of sulfur dioxide (SO2) in the atmosphere of the hot (approximately 1,100 K), Saturn-mass exoplanet WASP-39b from near-infrared JWST observations1–3 suggests that photochemistry is a key process in high-temperature exoplanet atmospheres4. This is because of the low (<1 ppb) abundance of SO2 under thermochemical equilibrium compared with that produced from the photochemistry of H2O and H2S (1–10 ppm)4–9. However, the SO2 inference was made from a single, small molecular feature in the transmission spectrum of WASP-39b at 4.05 μm and, therefore, the detection of other SO2 absorption bands at different wavelengths is needed to better constrain the SO2 abundance. Here we report the detection of SO2 spectral features at 7.7 and 8.5 μm in the 5–12-μm transmission spectrum of WASP-39b measured by the JWST Mid-Infrared Instrument (MIRI) Low Resolution Spectrometer (LRS)10. Our observations suggest an abundance of SO2 of 0.5–25 ppm (1σ range), consistent with previous findings4. As well as SO2, we find broad water-vapour absorption features, as well as an unexplained decrease in the transit depth at wavelengths longer than 10 μm. Fitting the spectrum with a grid of atmospheric forward models, we derive an atmospheric heavy-element content (metallicity) for WASP-39b of approximately 7.1–8.0 times solar and demonstrate that photochemistry shapes the spectra of WASP-39b across a broad wavelength range.
Publisher
Springer Science and Business Media LLC
Reference162 articles.
1. JWST Transiting Exoplanet Community Early Release Science Team. Identification of carbon dioxide in an exoplanet atmosphere. Nature 614, 649–652 (2023). 2. Alderson, L. et al. Early Release Science of the exoplanet WASP-39b with JWST NIRSpec G395H. Nature 614, 664–669 (2023). 3. Rustamkulov, Z. et al. Early Release Science of the exoplanet WASP-39b with JWST NIRSpec PRISM. Nature 614, 659–663 (2023). 4. Tsai, S.-M. et al. Photochemically produced SO2 in the atmosphere of WASP-39b. Nature 617, 483–487 (2023). 5. Zahnle, K., Marley, M. S., Freedman, R. S., Lodders, K. & Fortney, J. J. Atmospheric sulfur photochemistry on hot Jupiters. Astrophys. J. 701, L20–L24 (2009).
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