Literature DB >> 33828321

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

Paolo Giacobbe1, Matteo Brogi2,3,4, Siddharth Gandhi3,4, Patricio E Cubillos5, Aldo S Bonomo2, Alessandro Sozzetti2, Luca Fossati5, Gloria Guilluy2,6, Ilaria Carleo7, Monica Rainer8, Avet Harutyunyan9, Francesco Borsa10, Lorenzo Pino8,11, Valerio Nascimbeni12, Serena Benatti13, Katia Biazzo14, Andrea Bignamini15, Katy L Chubb16, Riccardo Claudi17, Rosario Cosentino9, Elvira Covino18, Mario Damasso2, Silvano Desidera17, Aldo F M Fiorenzano9, Adriano Ghedina9, Antonino F Lanza19, Giuseppe Leto19, Antonio Maggio13, Luca Malavolta12, Jesus Maldonado13, Giuseppina Micela13, Emilio Molinari20, Isabella Pagano19, Marco Pedani9, Giampaolo Piotto12, Ennio Poretti9, Gaetano Scandariato19, Sergei N Yurchenko21, Daniela Fantinel17, Alberto Galli8, Marcello Lodi13, Nicoletta Sanna8, Andrea Tozzi8.   

Abstract

The atmospheres of gaseous giant exoplanets orbiting close to their parent stars (hot Jupiters) have been probed for nearly two decades1,2. They allow us to investigate the chemical and physical properties of planetary atmospheres under extreme irradiation conditions3. Previous observations of hot Jupiters as they transit in front of their host stars have revealed the frequent presence of water vapour4 and carbon monoxide5 in their atmospheres; this has been studied in terms of scaled solar composition6 under the usual assumption of chemical equilibrium. Both molecules as well as hydrogen cyanide were found in the atmosphere of HD 209458b5,7,8, a well studied hot Jupiter (with equilibrium temperature around 1,500 kelvin), whereas ammonia was tentatively detected there9 and subsequently refuted10. Here we report observations of HD 209458b that indicate the presence of water (H2O), carbon monoxide (CO), hydrogen cyanide (HCN), methane (CH4), ammonia (NH3) and acetylene (C2H2), with statistical significance of 5.3 to 9.9 standard deviations per molecule. Atmospheric models in radiative and chemical equilibrium that account for the detected species indicate a carbon-rich chemistry with a carbon-to-oxygen ratio close to or greater than 1, higher than the solar value (0.55). According to existing models relating the atmospheric chemistry to planet formation and migration scenarios3,11,12, this would suggest that HD 209458b formed far from its present location and subsequently migrated inwards11,13. Other hot Jupiters may also show a richer chemistry than has been previously found, which would bring into question the frequently made assumption that they have solar-like and oxygen-rich compositions.

Entities:  

Year:  2021        PMID: 33828321     DOI: 10.1038/s41586-021-03381-x

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


  4 in total

1.  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

2.  A continuum from clear to cloudy hot-Jupiter exoplanets without primordial water depletion.

Authors:  David K Sing; Jonathan J Fortney; Nikolay Nikolov; Hannah R Wakeford; Tiffany Kataria; Thomas M Evans; Suzanne Aigrain; Gilda E Ballester; Adam S Burrows; Drake Deming; Jean-Michel Désert; Neale P Gibson; Gregory W Henry; Catherine M Huitson; Heather A Knutson; Alain Lecavelier des Etangs; Frederic Pont; Adam P Showman; Alfred Vidal-Madjar; Michael H Williamson; Paul A Wilson
Journal:  Nature       Date:  2015-12-14       Impact factor: 49.962

3.  The generalisation of student's problems when several different population variances are involved.

Authors:  B L WELCH
Journal:  Biometrika       Date:  1947       Impact factor: 2.445

4.  Chemical kinetics on extrasolar planets.

Authors:  Julianne I Moses
Journal:  Philos Trans A Math Phys Eng Sci       Date:  2014-03-24       Impact factor: 4.226

  4 in total
  1 in total

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

Authors:  Michael R Line; Matteo Brogi; Jacob L Bean; Siddharth Gandhi; Joseph Zalesky; Vivien Parmentier; Peter Smith; Gregory N Mace; Megan Mansfield; Eliza M-R Kempton; Jonathan J Fortney; Evgenya Shkolnik; Jennifer Patience; Emily Rauscher; Jean-Michel Désert; Joost P Wardenier
Journal:  Nature       Date:  2021-10-27       Impact factor: 49.962

  1 in total

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