A JWST NIRSpec Phase Curve for WASP-121b: Dayside Emission Strongest Eastward of the Substellar Point and Nightside Conditions Conducive to Cloud Formation
arXiv:2301.03209 · doi:10.3847/2041-8213/acb049
Abstract
We present the first exoplanet phase curve measurement made with the JWST NIRSpec instrument, highlighting the exceptional stability of this newly-commissioned observatory for exoplanet climate studies. The target, WASP-121b, is an ultrahot Jupiter with an orbital period of 30.6 hr. We analyze two broadband light curves generated for the NRS1 and NRS2 detectors, covering wavelength ranges of 2.70-3.72 micron and 3.82-5.15 micron, respectively. Both light curves exhibit minimal systematics, with approximately linear drifts in the baseline flux level of 30 ppm/hr (NRS1) and 10 ppm/hr (NRS2). Assuming a simple brightness map for the planet described by a low-order spherical harmonic dipole, our light curve fits suggest that the phase curve peaks coincide with orbital phases deg (NRS1) and deg (NRS2) prior to mid-eclipse. This is consistent with the strongest dayside emission emanating from eastward of the substellar point. We measure planet-to-star emission ratios of ppm (NRS1) and ppm (NRS2) for the dayside hemisphere, and ppm (NRS1) and ppm (NRS2) for the nightside hemisphere. The latter nightside emission ratios translate to planetary brightness temperatures of K (NRS1) and K (NRS2), which are low enough for a wide range of refractory condensates to form, including enstatite and forsterite. A nightside cloud deck may be blocking emission from deeper, hotter layers of the atmosphere, potentially helping to explain why cloud-free 3D general circulation model simulations systematically over-predict the nightside emission for WASP-121b.
Accepted for publication in Astrophysical Journal Letters on December 29, 2022
References in corpus (14)
- The NumPy array: a structure for efficient numerical computation
- Thermal structure of an exoplanet atmosphere from phase-resolved emission spectroscopy
- An ultrahot gas-giant exoplanet with a stratosphere
- Hot Exoplanet Atmospheres Resolved with Transit Spectroscopy (HEARTS) IV. A spectral inventory of atoms and molecules in the high-resolution transmission spectrum of WASP-121 b
- High temperature condensate clouds in super-hot Jupiter atmospheres
- The Atmospheric Circulation of Ultra-hot Jupiters
- Climate of an Ultra hot Jupiter: Spectroscopic phase curve of WASP-18b with HST/WFC3
- The Near-Infrared Spectrograph (NIRSpec) on the James Webb Space Telescope IV. Capabilities and predicted performance for exoplanet characterization
- Analysis of a JWST NIRSpec Lab Time Series: Characterizing Systematics, Recovering Exoplanet Transit Spectroscopy, and Constraining a Noise Floor
- Diurnal variations in the stratosphere of the ultrahot giant exoplanet WASP-121b
- Confirmation of water emission in the dayside spectrum of the ultrahot Jupiter WASP-121b
- 2D Retrieval Frameworks for Hot Jupiter Phase Curves
- A Universal Cloud Composition on the Nightsides of Hot Jupiters
- Tidal Response and Shape of Hot Jupiters