A chemical kinetics code for modelling exoplanetary atmospheres
arXiv:1905.06826 · doi:10.1093/mnras/stz1333
Abstract
Chemical compositions of exoplanets can provide key insights into their physical processes, and formation and evolutionary histories. Atmospheric spectroscopy provides a direct avenue to probe exoplanetary compositions. However, whether obtained in transit or thermal emission, spectroscopic observations probe limited pressure windows of planetary atmospheres and are directly sensitive to only a limited set of spectroscopically active species. It is therefore critical to have chemical models that can relate retrieved atmospheric compositions to an atmosphere's bulk physical and chemical state. To this end we present LEVI, a new chemical kinetics code for modelling exoplanetary atmospheres. LEVI calculates the gas phase hydrogen, oxygen, carbon, and nitrogen chemistry in planetary atmospheres. Here we focus on hot gas giants. Applying LEVI, we investigate how variations in bulk C/O and N/O affects the observable atmospheric chemistry in hot Jupiters. For typical hot Jupiters we demonstrate the strong sensitivity of molecular detections to the atmospheric C/O. Molecular detections are conversely less sensitive to the atmospheric N/O ratio, although highly super-solar N/O can decrease the C/O required for HCN and NH3 detection. Using a new P-T profile for HD 209458b without a thermal inversion, we evaluate recently reported detection's of CO, H2O and HCN in its day-side atmosphere. We find that our models are consistent with the detected species, albeit with a narrow compositional window around C/O 1. A C/O 0.9 (1.6 times solar) was required to meet the minimum reported value for HCN, while a C/O 1 (1.8 times solar) was required to fit the nominal H2O abundance.
21 pages, 13 figures. Accepted for publication in MNRAS
References in corpus (19)
- Atmospheric Escape from Hot Jupiters
- The imprint of exoplanet formation history on observable present-day spectra of hot Jupiters
- Atmospheric Sulfur Photochemistry on Hot Jupiters
- Strong Water Absorption in the Dayside Emission Spectrum of the Planet HD 189733b
- Towards Chemical Constraints on Hot Jupiter Migration
- A chemical model for the atmosphere of hot Jupiters
- Dynamics and Disequilibrium Carbon Chemistry in Hot Jupiter Atmospheres, With Application to HD 209458b
- VULCAN: an Open-Source, Validated Chemical Kinetics Python Code for Exoplanetary Atmospheres
- The Effects of Consistent Chemical Kinetics Calculations on the Pressure-Temperature Profiles and Emission Spectra of Hot Jupiters
- Pseudo 2D chemical model of hot Jupiter atmospheres: application to HD 209458b and HD 189733b
- New Analysis Indicates No Thermal Inversion in the Atmosphere of HD 209458b
- GENESIS: New Self-Consistent Models of Exoplanetary Spectra
- Deciphering the Atmospheric Composition of WASP-12b: A Comprehensive Analysis of its Dayside Emission
- The UK Met Office GCM with a sophisticated radiation scheme applied to the hot Jupiter HD 209458b
- Evidence against a strong thermal inversion in HD 209458 b from high-dispersion spectroscopy
- C/O and O/H Ratios Suggest Some Hot Jupiters Originate Beyond the Snow Line
- High-temperature measurements of VUV-absorption cross sections of CO2 and their application to exoplanets
- VUV-absorption cross section of carbon dioxide from 150 to 800 K and applications to warm exoplanetary atmospheres
- Signatures of Nitrogen Chemistry in Hot Jupiter Atmospheres