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Early Release Science of the exoplanet WASP-39b with JWST NIRSpec G395H

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posted on 2024-01-24, 19:00 authored by L Alderson, HR Wakeford, MK Alam, NE Batalha, JD Lothringer, J Adams Redai, S Barat, J Brande, M Damiano, T Daylan, N Espinoza, L Flagg, JM Goyal, D Grant, R Hu, J Inglis, EKH Lee, T Mikal-Evans, L Ramos-Rosado, PA Roy, NL Wallack, NM Batalha, JL Bean, B Benneke, ZK Berta-Thompson, AL Carter, Q Changeat, KD Colón, IJM Crossfield, JM Désert, D Foreman-Mackey, NP Gibson, L Kreidberg, MR Line, M López-Morales, K Molaverdikhani, SE Moran, G Morello, JI Moses, S Mukherjee, E Schlawin, DK Sing, KB Stevenson, J Taylor, K Aggarwal, EM Ahrer, NH Allen, JK Barstow, TJ Bell, J Blecic, SL Casewell, KL Chubb, N Crouzet, PE Cubillos, L Decin, AD Feinstein, JJ Fortney, J Harrington, K Heng, N Iro, EMR Kempton, J Kirk, HA Knutson, J Krick, J Leconte, M Lendl, RJ MacDonald, L Mancini, M Mansfield, EM May, NJ Mayne, Y Miguel, NK Nikolov, K Ohno, E Palle, V Parmentier, DJM Petit dit de la Roche, C Piaulet, D Powell, BV Rackham, S Redfield, LK Rogers, Z Rustamkulov, X Tan, P Tremblin, SM Tsai, JD Turner, M de Val-Borro, O Venot, L Welbanks, PJ Wheatley, X Zhang

Measuring the abundances of carbon and oxygen in exoplanet atmospheres is considered a crucial avenue for unlocking the formation and evolution of exoplanetary systems1,2. Access to the chemical inventory of an exoplanet requires high-precision observations, often inferred from individual molecular detections with low-resolution space-based3–5 and high-resolution ground-based6–8 facilities. Here we report the medium-resolution (R ≈ 600) transmission spectrum of an exoplanet atmosphere between 3 and 5 μm covering several absorption features for the Saturn-mass exoplanet WASP-39b (ref. 9), obtained with the Near Infrared Spectrograph (NIRSpec) G395H grating of JWST. Our observations achieve 1.46 times photon precision, providing an average transit depth uncertainty of 221 ppm per spectroscopic bin, and present minimal impacts from systematic effects. We detect significant absorption from CO2 (28.5σ) and H2O (21.5σ), and identify SO2 as the source of absorption at 4.1 μm (4.8σ). Best-fit atmospheric models range between 3 and 10 times solar metallicity, with sub-solar to solar C/O ratios. These results, including the detection of SO2, underscore the importance of characterizing the chemistry in exoplanet atmospheres and showcase NIRSpec G395H as an excellent mode for time-series observations over this critical wavelength range10.

History

Author affiliation

School of Physics & Astronomy, University of Leicester

Version

  • VoR (Version of Record)

Published in

Nature

Volume

614

Pagination

664-669

Publisher

Springer Science and Business Media LLC

issn

0028-0836

eissn

1476-4687

Copyright date

2023

Available date

2024-01-24

Spatial coverage

England

Language

eng

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