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The atmosphere of Titan in late northern summer from JWST and Keck observations

  • Conor A. Nixon
  • , Bruno Bézard
  • , Thomas Cornet
  • , Brandon Park Coy
  • , Imke de Pater
  • , Maël Es-Sayeh
  • , Heidi B. Hammel
  • , Emmanuel Lellouch
  • , Nicholas A. Lombardo
  • , Manuel López-Puertas
  • , Juan M. Lora
  • , Pascal Rannou
  • , Sébastien Rodriguez
  • , Nicholas A. Teanby
  • , Elizabeth P. Turtle
  • , Richard K. Achterberg
  • , Carlos Alvarez
  • , Ashley G. Davies
  • , Katherine de Kleer
  • , Greg Doppmann
  • Leigh N. Fletcher, Alexander G. Hayes, Bryan J. Holler, Patrick G.J. Irwin, Carolyn Jordan, Oliver R.T. King, Nicholas W. Kutsop, Theresa C. Marlin, Henrik Melin, Stefanie N. Milam, Edward M. Molter, Luke Moore, Yaniss Nyffenegger-Péré, James O’Donoghue, John O’Meara, Scot C.R. Rafkin, Michael T. Roman, Arina Rostopchina, Naomi Rowe-Gurney, Carl Schmidt, Judy Schmidt, Christophe Sotin, Tom S. Stallard, John A. Stansberry, Robert A. West

Research output: Contribution to journalArticlepeer-review

12 Scopus citations

Abstract

Saturn’s moon Titan undergoes a long annual cycle of 29.45 Earth years. Titan’s northern winter and spring were investigated in detail by the Cassini–Huygens spacecraft (2004–2017), but the northern summer season remains sparsely studied. Here we present new observations from the James Webb Space Telescope (JWST) and Keck II telescope made in 2022 and 2023 during Titan’s late northern summer. Using JWST’s mid-infrared instrument, we spectroscopically detected the methyl radical, the primary product of methane break-up and key to the formation of ethane and heavier molecules. Using the near-infrared spectrograph onboard JWST, we detected several non-local thermodynamic equilibrium CO and CO2 emission bands, which allowed us to measure these species over a wide altitude range. Lastly, using the near-infrared camera onboard JWST and Keck II, we imaged northern hemisphere tropospheric clouds evolving in altitude, which provided new insights and constraints on seasonal convection patterns. These observations pave the way for new observations and modelling of Titan’s climate and meteorology as it progresses through the northern fall equinox, when its atmosphere is expected to show notable seasonal changes.

Original languageEnglish
Pages (from-to)969-981
Number of pages13
JournalNature Astronomy
Volume9
Issue number7
DOIs
StatePublished - Jul 2025
Externally publishedYes

UN SDGs

This output contributes to the following UN Sustainable Development Goals (SDGs)

  1. SDG 13 - Climate Action
    SDG 13 Climate Action

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