Signature of the atmospheric asymmetries of hot and ultra-hot Jupiters in lightcurves
arXiv:2402.12355 · doi:10.1051/0004-6361/202348880
Abstract
With the new generation of space telescopes such as the James Webb Space Telescope (JWST), it is possible to better characterize the atmospheres of exoplanets. The atmospheres of Hot and Ultra Hot Jupiters are highly heterogeneous and asymmetrical. The difference between the temperatures on the day-side and the night-side is especially extreme in the case of Ultra Hot Jupiters. We introduce a new tool to compute synthetic lightcurves from 3D GCM simulations, developed in the Pytmosph3R framework. We show how rotation induces a variation of the flux during the transit that is a source of information on the chemical and thermal distribution of the atmosphere. We find that the day-night gradient linked to Ultra Hot Jupiters has an effect close to the stellar limb-darkening, but opposite to tidal deformation. We confirm the impact of the atmospheric and chemical distribution on variations of the central transit time, though the variations found are smaller than that of available observational data, which could indicate that the east-west asymmetries are underestimated, due to the chemistry or clouds.
Accepted for publication in A&A (16th Feb.) 17 pages, 18 figures + 7 in appendices
References in corpus (21)
- Early Release Science of the exoplanet WASP-39b with JWST NIRSpec PRISM
- Atmospheric Circulation of Hot Jupiters: Three-dimensional circulation models of HD 209458b and HD 189733b with Simplified Forcing
- Atmospheric Circulation of Hot Jupiters: A Shallow Three-Dimensional Model
- The Effects of Consistent Chemical Kinetics Calculations on the Pressure-Temperature Profiles and Emission Spectra of Hot Jupiters
- The Atmospheric Circulation of Ultra-hot Jupiters
- Effects of a fully 3D atmospheric structure on exoplanet transmission spectra: retrieval biases due to day-night temperature gradients
- Why is it so Cold in Here?: Explaining the Cold Temperatures Retrieved from Transmission Spectra of Exoplanet Atmospheres
- Strong biases in retrieved atmospheric composition caused by strong day-night chemical heterogeneities
- TRIDENT: A Rapid 3D Radiative Transfer Model for Exoplanet Transmission Spectra
- Constraining mornings & evenings on distant worlds: a new semi-analytical approach and prospects with transmission spectroscopy
- Time-resolved transmission spectroscopy of the ultra-hot Jupiter WASP-189 b
- Exoplanet atmosphere retrievals in 3D using phase curve data with ARCiS: application to WASP-43b
- Towards multi-dimensional analysis of transmission spectroscopy. Part II: Day-night induced biases in retrievals from hot to ultra-hot Jupiters
- Aura-3D: A Three-dimensional Atmospheric Retrieval Framework for Exoplanet Transmission Spectra
- Detectability of shape deformation in short-period exoplanets
- Impact of stellar flares on the chemical composition and transmission spectra of gaseous exoplanets orbiting M dwarfs
- Toward a multidimensional analysis of transmission spectroscopy. Part I: Computation of transmission spectra using a 1D, 2D, or 3D atmosphere structure
- Transmission strings: a technique for spatially mapping exoplanet atmospheres around their terminators
- Catwoman: A transit modelling Python package for asymmetric light curves
- HST/STIS capability for Love number measurement of WASP-121b
- Toward a multidimensional analysis of transmission spectroscopy. Part III: Modelling 2D effects in retrievals with TauREx
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- LavAtmos 2.0: Incorporating Volatiles Species in Vaporization Models
- Probing Two-dimensional Asymmetries of an Exoplanet Atmosphere from Chromatic Transit Variation
- Atmospheric asymmetries in WASP-121 b revealed by rotational transits detected with JWST