Toward a multidimensional analysis of transmission spectroscopy. Part I: Computation of transmission spectra using a 1D, 2D, or 3D atmosphere structure
arXiv:2110.11799 · doi:10.1051/0004-6361/202141940
Abstract
Considering the relatively high precision that will be reached by future observatories, it has recently become clear that one dimensional (1D) atmospheric models, in which the atmospheric temperature and composition of a planet are considered to vary only in the vertical, will be unable to represent exoplanetary transmission spectra with a sufficient accuracy. This is particularly true for warm to (ultra-) hot exoplanets because the atmosphere is unable to redistribute all the energy deposited on the dayside, creating a strong thermal and often compositional dichotomy on the planet. This situation is exacerbated by transmission spectroscopy, which probes the terminator region. This is the most heterogeneous region of the atmosphere. However, if being able to compute transmission spectra from 3D atmospheric structures (from a global climate model, e.g.) is necessary to predict realistic observables, it is too computationally expensive to be used in a data inversion framework. For this reason, there is a need for a medium-complexity 2D approach that captures the most salient features of the 3D model in a sufficiently fast implementation. With this in mind, we present a new open-source documented version of Pytmosph3R that handles the computation of transmission spectra for atmospheres with up to three spatial dimensions and can account for time variability. Taking the example of an ultra hot Jupiter, we illustrate how the changing orientation of the planet during the transit can allow us to probe the horizontal variations in the atmosphere. We further implement our algorithm in TauREx to allow the community to perform 2D retrievals. We describe our extensive cross-validation benchmarks and discuss the accuracy and numerical performance of each model.
Accepted for publication in A&A. Pytmosph3R is available at http://perso.astrophy.u-bordeaux.fr/~jleconte/pytmosph3r-doc/index.html; Table 2 is corrected in this version
References in corpus (18)
- petitRADTRANS: a Python radiative transfer package for exoplanet characterization and retrieval
- Thermal structure of an exoplanet atmosphere from phase-resolved emission spectroscopy
- Tau-REx I: A next generation retrieval code for exoplanetary atmospheres
- A consistent retrieval analysis of 10 Hot Jupiters observed in transmission
- 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
- Hot Exoplanet Atmospheres Resolved with Transit Spectroscopy (HEARTS) - II. A broadened sodium feature on the ultra-hot giant WASP-76b
- Effects of a fully 3D atmospheric structure on exoplanet transmission spectra: retrieval biases due to day-night temperature gradients
- ARES I: WASP-76 b, A Tale of Two HST Spectra
- Detection of an Atmosphere on a Rocky Exoplanet
- Confirmation of water emission in the dayside spectrum of the ultrahot Jupiter WASP-121b
- Formation and dynamics of water clouds on temperate sub-Neptunes: The example of K2-18b
- Constraining mornings & evenings on distant worlds: a new semi-analytical approach and prospects with transmission spectroscopy
- ARES III: Unveiling the Two Faces of KELT-7 b with HST WFC3
- Spectral binning of precomputed correlated-k coefficients
- ARES IV: Probing the atmospheres of the two warm small planets HD 106315 c and HD 3167 c with the HST/WFC3 camera
- NEMESIS: Exoplanet Transit Survey of Nearby M-Dwarfs in TESS FFIs I
Cited by in corpus (14)
- TRIDENT: A Rapid 3D Radiative Transfer Model for Exoplanet Transmission Spectra
- 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
- Impact of stellar flares on the chemical composition and transmission spectra of gaseous exoplanets orbiting M dwarfs
- Hot exoplanetary atmospheres in 3D
- Toward a multidimensional analysis of transmission spectroscopy. Part III: Modelling 2D effects in retrievals with TauREx
- ARES VI: Viability of one-dimensional retrieval models for transmission spectroscopy characterization of exo-atmospheres in the era of JWST and Ariel
- Signature of the atmospheric asymmetries of hot and ultra-hot Jupiters in lightcurves
- Radiative Transfer and Inversion codes for characterizing planetary atmospheres: an overview
- Detecting HO with CRIRES+: the case of WASP-20b
- Warm Jupiters around M-dwarfs are great opportunities for extensive chemical, cloud and haze characterisation with JWST
- Reliability of 1D radiative-convective photochemical-equilibrium retrievals on transit spectra of WASP-107b
- Atmospheric asymmetries in WASP-121 b revealed by rotational transits detected with JWST