Published February 20, 2020 | Version v1
Journal article

Global Chemistry and Thermal Structure Models for the Hot Jupiter WASP-43b and Predictions for JWST

  • 1. Laboratoire Interuniversitaire des Systèmes Atmosphériques (LISA), UMR CNRS 7583, Université Paris-Est-Créteil, Université de Paris, Institut Pierre Simon Laplace, Créteil (France)
  • 2. AOPP, Department of Physics, University of Oxford (United Kingdom)
  • 3. NYU Abu Dhabi, Abu Dhabi (United Arab Emirates)
  • 4. Space Research Institute, Austrian Academy of Sciences, Schmiedlstr. 6, A-8042, Graz (Austria)
  • 5. University College London, Department of Physics and Astronomy, Gower Street, London WC1E 6BT (United Kingdom)
  • 6. Space Science Institute, Boulder, CO (United States)
  • 7. Maison de la Simulation, CEA, CNRS, Univ. Paris-Sud, UVSQ, Université Paris-Saclay, F-91191 Gif-sur-Yvette (France)
  • 8. Science Support Office, Directorate of Science, European Space Research and Technology Centre (ESA/ESTEC), Keplerlaan 1, 2201 AZ Noordwijk (Netherlands)
  • 9. Astronomy Department, University of California, Berkeley, 501 Campbell Hall, MC 3411, Berkeley, CA 94720 (United States)
  • 10. Department of Astronomy and Astrophysics, University of California, Santa Cruz, CA 95064 (United States)
  • 11. AIM, CEA, CNRS, Université Paris-Saclay, Université Paris Diderot, Sorbonne Paris Cité, UMR7158 F-91191 Gif-sur-Yvette (France)
  • 12. Lunar and Planetary Laboratory, University of Arizona, 1629 E University Blvd, Tucson, AZ 85719 (United States)
  • 13. Harvard-Smithsonian Center for Astrophysics, 60 Garden Street, Cambridge, MA 02138 (United States)

Description

The James Webb Space Telescope (JWST) is expected to revolutionize the field of exoplanets. The broad wavelength coverage and the high sensitivity of its instruments will allow characterization of exoplanetary atmospheres with unprecedented precision. Following the Call for the Cycle 1 Early Release Science Program, the Transiting Exoplanet Community was awarded time to observe several targets, including WASP-43b. The atmosphere of this hot Jupiter has been intensively observed but still harbors some mysteries, especially concerning the day–night temperature gradient, the efficiency of the atmospheric circulation, and the presence of nightside clouds. We will constrain these properties by observing a full orbit of the planet and extracting its spectroscopic phase curve in the 5–12 μm range with JWST/MIRI. To prepare for these observations, we performed extensive modeling work with various codes: radiative transfer, chemical kinetics, cloud microphysics, global circulation models, JWST simulators, and spectral retrieval. Our JWST simulations show that we should achieve a precision of 210 ppm per 0.1 μm spectral bin on average, which will allow us to measure the variations of the spectrum in longitude and measure the nightside emission spectrum for the first time. If the atmosphere of WASP-43b is clear, our observations will permit us to determine if its atmosphere has an equilibrium or disequilibrium chemical composition, eventually providing the first conclusive evidence of chemical quenching in a hot Jupiter atmosphere. If the atmosphere is cloudy, a careful retrieval analysis will allow us to identify the cloud composition.

Availability note (English)

Available from http://dx.doi.org/10.3847/1538-4357/ab6a94

Additional details

Identifiers

Publishing Information

Journal Title
Astrophysical Journal
Journal Volume
890
Journal Issue
2
Journal Page Range
[21 p.]
ISSN
0004-637X
CODEN
ASJOAB

INIS

Country of Publication
United Kingdom
Country of Input or Organization
International Atomic Energy Agency (IAEA)
INIS RN
53002932
Subject category
S79: ASTROPHYSICS, COSMOLOGY AND ASTRONOMY;
Descriptors DEI
ATMOSPHERIC CIRCULATION; COMPUTERIZED SIMULATION; EMISSION SPECTRA; FORECASTING; PLANETARY ATMOSPHERES; RADIANT HEAT TRANSFER; SENSITIVITY; SPACE VEHICLES; TELESCOPES; TEMPERATURE GRADIENTS
Descriptors DEC
ATMOSPHERES; ENERGY TRANSFER; HEAT TRANSFER; SIMULATION; SPECTRA; VEHICLES