Temporal variations in vertical cloud structure of Jupiter鈥檚 Great Red Spot, its surroundings and Oval BA from HST/WFC3 imaging

Journal of Geophysical Research: Planets Wiley 128:9 (2023) e2022JE007427

Authors:

Asier Anguiano鈥怉rteaga, Santiago P茅rez鈥怘oyos, Agust铆n S谩nchez鈥怢avega, Jos茅 Francisco Sanz鈥怰equena, Patrick GJ Irwin

Abstract:

In this study, we present the evolution of the properties and vertical distribution of the hazes in Jupiter's Great Red Spot (GRS), its surroundings and Oval BA from 2015 to 2021. To retrieve the main atmospheric parameters, we model the spectral reflectivity of a number of dynamically and/or spectrally interesting regions with a radiative transfer tool that uses an optimal estimator scheme. The spectra of the selected regions are obtained from high-resolution Hubble Space Telescope Wide Field Camera 3 images that cover the spectral range from 200 to 900 nm. The a priori model atmosphere used to describe the various Jovian regions is taken from Anguiano-Arteaga et al. (2021, https://doi.org/10.1029/2021JE006996) for each corresponding area. We find that the biggest variations in the GRS occur in the optical thickness of the stratospheric and tropospheric haze layers starting in 2019 and in the mean size of the tropospheric haze particles in 2018. The absorption spectra of both hazes show little variations among the analyzed regions and years, with the stratospheric haze properties seeming compatible with the chromophore proposed by Carlson et al. (2016, https://doi.org/10.1016/j.icarus.2016.03.008). We report a color change of Oval BA from red to white during these years that, according to our models, can be mostly explained in terms of a decrease in the stratospheric haze optical depth.

A Nondetection of Iron in the First High-resolution Emission 51猎奇入口 of the Lava Planet 55 Cnc e

The Astronomical Journal IOP Publishing 166:4 (2023) 155-155

Authors:

Kaitlin C Rasmussen, Miles H Currie, Celeste Hagee, Christiaan van Buchem, Matej Malik, Arjun B Savel, Matteo Brogi, Emily Rauscher, Victoria Meadows, Megan Mansfield, Eliza M-R Kempton, Jean-Michel Desert, Joost P Wardenier, Lorenzo Pino, Michael Line, Vivien Parmentier, Andreas Seifahrt, David Kasper, Madison Brady, Jacob L Bean

Abstract:

Abstract Close-in lava planets represent an extreme example of terrestrial worlds, but their high temperatures may allow us to probe a diversity of crustal compositions. The brightest and most well-studied of these objects is 55 Cancri e, a nearby super-Earth with a remarkably short 17 hr orbit. However, despite numerous studies, debate remains about the existence and composition of its atmosphere. We present upper limits on the atmospheric pressure of 55 Cnc e derived from high-resolution time-series spectra taken with Gemini-N/MAROON-X. Our results are consistent with current crustal evaporation models for this planet which predict a thin 鈭100 mbar atmosphere. We conclude that, if a mineral atmosphere is present on 55 Cnc e, the atmospheric pressure is below 100 mbar.

Modelling the effect of 3D temperature and chemistry on the cross-correlation signal of transiting ultra-hot Jupiters: a study of five chemical species on WASP-76b

Monthly Notices of the Royal Astronomical Society Oxford University Press (OUP) 525:4 (2023) 4942-4961

Authors:

Joost P Wardenier, Vivien Parmentier, Michael R Line, Elspeth KH Lee

Testing 2D temperature models in Bayesian retrievals of atmospheric properties from hot Jupiter phase curves

Monthly Notices of the Royal Astronomical Society Oxford University Press 525:4 (2023) 5146-5167

Authors:

Jingxuan Yang, Patrick GJ Irwin, Joanna K Barstow

Abstract:

Spectroscopic phase curves of transiting hot Jupiters are spectral measurements at multiple orbital phases, giving a set of disc-averaged spectra that probe multiple hemispheres. By fitting model phase curves to observations, we can constrain the atmospheric properties of hot Jupiters, such as molecular abundance, aerosol distribution, and thermal structure, which offer insights into their atmospheric dynamics, chemistry, and formation. We propose a novel 2D temperature parametrization consisting of a dayside and a nightside to retrieve information from near-infrared phase curves and apply the method to phase curves of WASP-43b observed by HST/Wide Field Camera 3 and Spitzer/Infra-Red Array Camera. In our scheme, the temperature is constant on isobars on the nightside and varies with cosn(longitude/系) on isobars on the dayside, where n and 系 are free parameters. We fit all orbital phases simultaneously using the radiative transfer package NEMESISPY coupled to a Bayesian inference code. We first validate the performance of our retrieval scheme with synthetic phase curves generated from a Global Circulation Model and find that our 2D scheme can accurately retrieve the latitudinally averaged thermal structure and constrain the abundance of H2O and CH4. We then apply our 2D scheme to the observed phase curves of WASP-43b and find: (1) The dayside temperature–pressure profiles do not vary strongly with longitude and are non-inverted. (2) The retrieved nightside temperatures are extremely low, suggesting significant nightside cloud coverage. (3) The H2O volume mixing ratio is constrained to 5.6 × 10−5–4.0 × 10−4, and we retrieve an upper bound for CH4 mixing ratio at ∼10−6.

Spectral determination of the colour and vertical structure of dark spots in Neptune鈥檚 atmosphere

Nature Astronomy Springer Nature 7 (2023) 1198-1207

Authors:

Pgj Irwin, J Dobinson, A James, Mh Wong, Ln Fletcher, Mt Roman, Na Teanby, D Toledo, Gs Orton, S P茅rez-Hoyos, A S谩nchez-Lavega, L Sromovsky, Aa Simon, R Morales-Juber铆as, Id Pater, Sl Cook

Abstract:

Previous observations of dark vortices in Neptune鈥檚 atmosphere, such as Voyager 2鈥檚 Great Dark Spot (1989), have been made in only a few broad-wavelength channels, hampering efforts to determine these vortices鈥 pressure levels and darkening processes. We analyse spectroscopic observations of a dark spot on Neptune identified by the Hubble Space Telescope as NDS-2018; the spectral observations were made in 2019 by the Multi Unit Spectroscopic Explorer (MUSE) of the Very Large Telescope (Chile). The MUSE medium-resolution 475鈥933鈥塶m reflection spectra allow us to show that dark spots are caused by darkening at short wavelengths (<700鈥塶m) of a deep ~5鈥塨ar aerosol layer, which we suggest is the H2S condensation layer. A deep bright spot, named DBS-2019, is also visible on the edge of NDS-2018, with a spectral signature consistent with a brightening of the same 5鈥塨ar layer at longer wavelengths (>700鈥塶m). This bright feature is much deeper than previously studied dark-spot companion clouds and may be connected with the circulation that generates and sustains such spots.