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The Hubble Space Telescope PanCET Program: Exospheric Mg ii and Fe ii in the Near-ultraviolet Transmission Spectrum of WASP-121b Using Jitter Decorrelation

  • David K. Sing
  • , Panayotis Lavvas
  • , Gilda E. Ballester
  • , Alain Lecavelier Des Etangs
  • , Mark S. Marley
  • , Nikolay Nikolov
  • , Lotfi Ben-Jaffel
  • , Vincent Bourrier
  • , Lars A. Buchhave
  • , Drake L. Deming
  • , David Ehrenreich
  • , Thomas Mikal-Evans
  • , Tiffany Kataria
  • , Nikole K. Lewis
  • , Mercedes López-Morales
  • , Antonio García Muñoz
  • , Gregory W. Henry
  • , Jorge Sanz-Forcada
  • , Jessica J. Spake
  • , Hannah R. Wakeford
  • Johns Hopkins University Krieger School of Arts and Sciences
  • Johns Hopkins University
  • Univ. de Reims Champagne Ardenne
  • University of Arizona
  • NASA Ames Research Center
  • CNRS
  • University of Geneva
  • Technical University of Denmark
  • University of Maryland
  • Massachusetts Institute of Technology
  • Science Division
  • Cornell University
  • Center for Astrophysics | Harvard & Smithsonian
  • TU Berlin
  • Tennessee State University
  • ESAC campus
  • University of Exeter
  • Space Telescope Science Institute

Résultats de recherche: Contribution à un journalArticleRevue par des pairs

172 Citations (Scopus)

Résumé

We present Hubble Space Telescope (HST) near-ultraviolet (NUV) transits of the hot Jupiter WASP-121b, acquired as part of the PanCET program. Time-series spectra during two transit events were used to measure the transmission spectra between 2280 and 3070 Å at a resolution of 30,000. Using HST data from 61 Space Telescope Imaging Spectrograph visits, we show that data from HST's Pointing Control System can be used to decorrelate the instrument systematic errors (jitter decorrelation), which we used to fit the WASP-121b light curves. The NUV spectra show very strong absorption features, with the NUV white light curve found to be larger than the average optical and near-infrared value at 6σ confidence. We identify and spectrally resolve absorption from the Mg ii doublet in the planetary exosphere at a 5.9σ confidence level. The Mg ii doublet is observed to reach altitudes of R pl/R star = 0.284 0.037 for the 2796 Å line and 0.242 0.0431 for the 2804 Å line, which exceeds the Roche lobe size as viewed in transit geometry (R eqRL/R star = 0.158). We also detect and resolve strong features of the Fe ii UV1 and UV2 multiplets, and observe the lines reaching altitudes of R pl/R star ≈ 0.3. At these high altitudes, the atmospheric Mg ii and Fe ii gas is not gravitationally bound to the planet, and these ionized species may be hydrodynamically escaping or could be magnetically confined. Refractory Mg and Fe atoms at high altitudes also indicate that these species are not trapped into condensate clouds at depth, which places constraints on the deep interior temperature.

langue originaleAnglais
Numéro d'article91
journalAstronomical Journal
Volume158
Numéro de publication2
Les DOIs
étatPublié - 1 janv. 2019

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