Literature DB >> 34707303

A solar C/O and sub-solar metallicity in a hot Jupiter atmosphere.

Michael R Line1,2, Matteo Brogi3,4,5, Jacob L Bean6, Siddharth Gandhi3,4, Joseph Zalesky7, Vivien Parmentier8, Peter Smith7, Gregory N Mace9, Megan Mansfield10, Eliza M-R Kempton11, Jonathan J Fortney12, Evgenya Shkolnik7,13, Jennifer Patience7, Emily Rauscher14, Jean-Michel Désert15, Joost P Wardenier8.   

Abstract

Measurements of the atmospheric carbon (C) and oxygen (O) relative to hydrogen (H) in hot Jupiters (relative to their host stars) provide insight into their formation location and subsequent orbital migration1,2. Hot Jupiters that form beyond the major volatile (H2O/CO/CO2) ice lines and subsequently migrate post disk-dissipation are predicted have atmospheric carbon-to-oxygen ratios (C/O) near 1 and subsolar metallicities2, whereas planets that migrate through the disk before dissipation are predicted to be heavily polluted by infalling O-rich icy planetesimals, resulting in C/O < 0.5 and super-solar metallicities1,2. Previous observations of hot Jupiters have been able to provide bounded constraints on either H2O (refs. 3-5) or CO (refs. 6,7), but not both for the same planet, leaving uncertain4 the true elemental C and O inventory and subsequent C/O and metallicity determinations. Here we report spectroscopic observations of a typical transiting hot Jupiter, WASP-77Ab. From these, we determine the atmospheric gas volume mixing ratio constraints on both H2O and CO (9.5 × 10-5-1.5 × 10-4 and 1.2 × 10-4-2.6 × 10-4, respectively). From these bounded constraints, we are able to derive the atmospheric C/H ([Formula: see text] × solar) and O/H ([Formula: see text] × solar) abundances and the corresponding atmospheric carbon-to-oxygen ratio (C/O = 0.59 ± 0.08; the solar value is 0.55). The sub-solar (C+O)/H ([Formula: see text] × solar) is suggestive of a metal-depleted atmosphere relative to what is expected for Jovian-like planets1 while the near solar value of C/O rules out the disk-free migration/C-rich2 atmosphere scenario.
© 2021. The Author(s), under exclusive licence to Springer Nature Limited.

Entities:  

Year:  2021        PMID: 34707303     DOI: 10.1038/s41586-021-03912-6

Source DB:  PubMed          Journal:  Nature        ISSN: 0028-0836            Impact factor:   49.962


  4 in total

1.  The signature of orbital motion from the dayside of the planet τ Boötis b.

Authors:  Matteo Brogi; Ignas A G Snellen; Remco J de Kok; Simon Albrecht; Jayne Birkby; Ernst J W de Mooij
Journal:  Nature       Date:  2012-06-27       Impact factor: 49.962

2.  The orbital motion, absolute mass and high-altitude winds of exoplanet HD 209458b.

Authors:  Ignas A G Snellen; Remco J de Kok; Ernst J W de Mooij; Simon Albrecht
Journal:  Nature       Date:  2010-06-24       Impact factor: 49.962

3.  Atomic iron and titanium in the atmosphere of the exoplanet KELT-9b.

Authors:  H Jens Hoeijmakers; David Ehrenreich; Kevin Heng; Daniel Kitzmann; Simon L Grimm; Romain Allart; Russell Deitrick; Aurélien Wyttenbach; Maria Oreshenko; Lorenzo Pino; Paul B Rimmer; Emilio Molinari; Luca Di Fabrizio
Journal:  Nature       Date:  2018-08-15       Impact factor: 49.962

4.  Five carbon- and nitrogen-bearing species in a hot giant planet's atmosphere.

Authors:  Paolo Giacobbe; Matteo Brogi; Siddharth Gandhi; Patricio E Cubillos; Aldo S Bonomo; Alessandro Sozzetti; Luca Fossati; Gloria Guilluy; Ilaria Carleo; Monica Rainer; Avet Harutyunyan; Francesco Borsa; Lorenzo Pino; Valerio Nascimbeni; Serena Benatti; Katia Biazzo; Andrea Bignamini; Katy L Chubb; Riccardo Claudi; Rosario Cosentino; Elvira Covino; Mario Damasso; Silvano Desidera; Aldo F M Fiorenzano; Adriano Ghedina; Antonino F Lanza; Giuseppe Leto; Antonio Maggio; Luca Malavolta; Jesus Maldonado; Giuseppina Micela; Emilio Molinari; Isabella Pagano; Marco Pedani; Giampaolo Piotto; Ennio Poretti; Gaetano Scandariato; Sergei N Yurchenko; Daniela Fantinel; Alberto Galli; Marcello Lodi; Nicoletta Sanna; Andrea Tozzi
Journal:  Nature       Date:  2021-04-07       Impact factor: 49.962

  4 in total

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