Evidence for H Dissociation and Recombination Heat Transport in the Atmosphere of KELT-9b
arXiv:1910.01567 · doi:10.3847/2041-8213/ab5b09
Abstract
Phase curve observations provide an opportunity to study the full energy budgets of exoplanets by quantifying the amount of heat redistributed from their daysides to their nightsides. Theories explaining the properties of phase curves for hot Jupiters have focused on the balance between radiation and dynamics as the primary parameter controlling heat redistribution. However, recent phase curves have shown deviations from the trends that emerge from this theory, which has led to work on additional processes that may affect hot Jupiter energy budgets. One such process, molecular hydrogen dissociation and recombination, can enhance energy redistribution on ultra-hot Jupiters with temperatures above K. In order to study the impact of H dissociation on ultra-hot Jupiters, we present a phase curve of KELT-9b observed with the Spitzer Space Telescope at 4.5 m. KELT-9b is the hottest known transiting planet, with a 4.5-m dayside brightness temperature of K and a nightside temperature of K. We observe a phase curve amplitude of and a hot spot offset of degrees. The observed amplitude is too small to be explained by a simple balance between radiation and advection. General circulation models (GCMs) and an energy balance model that include the effects of H dissociation and recombination provide a better match to the data. The GCMs, however, predict a maximum hot spot offset of degrees, which disagrees with our observations at confidence. This discrepancy may be due to magnetic effects in the planet's highly ionized atmosphere.
References in corpus (14)
- A giant planet undergoing extreme ultraviolet irradiation by its hot massive-star host
- A spectral survey of an ultra-hot Jupiter: Detection of metals in the transmission spectrum of KELT-9 b
- Spitzer Phase Curve Constraints for WASP-43b at 3.6 and 4.5 microns
- New Analysis Indicates No Thermal Inversion in the Atmosphere of HD 209458b
- The Atmospheric Circulation of Ultra-hot Jupiters
- Self-luminous and irradiated exoplanetary atmospheres explored with HELIOS
- A global analysis of Spitzer and new HARPS data confirms the loneliness and metal-richness of GJ 436 b
- Magnetic Effects in Hot Jupiter Atmospheres
- Climate of an Ultra hot Jupiter: Spectroscopic phase curve of WASP-18b with HST/WFC3
- Effects of Bulk Composition on The Atmospheric Dynamics on Close-in Exoplanets
- Estimating the magnetic field strength in hot Jupiters
- Phase Offsets and the Energy Budgets of Hot Jupiters
- Shallow-water Magnetohydrodynamics for Westward Hotspots on Hot Jupiters
- Wavelength Does Not Equal Pressure: Vertical Contribution Functions and their Implications for Mapping Hot Jupiters