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Juno Jupiter image

Thaddeus Komacek

Associate Professor of Physics of Exoplanet Atmospheres

Research theme

  • Exoplanets and planetary physics

Sub department

  • Atmospheric, Oceanic and Planetary Physics

Research groups

  • Exoplanet atmospheres
tad.komacek@physics.ox.ac.uk
Atmospheric Physics Clarendon Laboratory, room 209D
  • About
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  • Research
  • Publications

Author Correction: Analogous response of temperate terrestrial exoplanets and Earth’s climate dynamics to greenhouse gas supplement

Scientific Reports Springer Nature 13:1 (2023) 15442

Authors:

Assaf Hochman, Thaddeus D Komacek, Paolo De Luca
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Analogous response of temperate terrestrial exoplanets and Earth’s climate dynamics to greenhouse gas supplement

Scientific Reports Springer Nature 13:1 (2023) 11123

Authors:

Assaf Hochman, Thaddeus D Komacek, Paolo De Luca
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Analogous response of temperate terrestrial exoplanets and Earth's climate dynamics to greenhouse gas supplement

(2023)

Authors:

Assaf Hochman, Thaddeus D Komacek, Paolo De Luca
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A broadband thermal emission spectrum of the ultra-hot Jupiter WASP-18b

Nature Nature Research 620:7973 (2023) 292-298

Authors:

Louis-Philippe Coulombe, Björn Benneke, Ryan Challener, Anjali AA Piette, Lindsey S Wiser, Megan Mansfield, Ryan J MacDonald, Hayley Beltz, Adina D Feinstein, Michael Radica, Arjun B Savel, Leonardo A Dos Santos, Jacob L Bean, Vivien Parmentier, Ian Wong, Emily Rauscher, Thaddeus D Komacek, Eliza M-R Kempton, Xianyu Tan, Mark Hammond, Neil T Lewis, Michael R Line, Elspeth KH Lee, Hinna Shivkumar, Ian JM Crossfield

Abstract:

Close-in giant exoplanets with temperatures greater than 2,000 K (''ultra-hot Jupiters'') have been the subject of extensive efforts to determine their atmospheric properties using thermal emission measurements from the Hubble and Spitzer Space Telescopes. However, previous studies have yielded inconsistent results because the small sizes of the spectral features and the limited information content of the data resulted in high sensitivity to the varying assumptions made in the treatment of instrument systematics and the atmospheric retrieval analysis. Here we present a dayside thermal emission spectrum of the ultra-hot Jupiter WASP-18b obtained with the NIRISS instrument on JWST. The data span 0.85 to 2.85 $\mu$m in wavelength at an average resolving power of 400 and exhibit minimal systematics. The spectrum shows three water emission features (at $>$6$\sigma$ confidence) and evidence for optical opacity, possibly due to H$^-$, TiO, and VO (combined significance of 3.8$\sigma$). Models that fit the data require a thermal inversion, molecular dissociation as predicted by chemical equilibrium, a solar heavy element abundance (''metallicity'', M/H = 1.03$_{-0.51}^{+1.11}$ $\times$ solar), and a carbon-to-oxygen (C/O) ratio less than unity. The data also yield a dayside brightness temperature map, which shows a peak in temperature near the sub-stellar point that decreases steeply and symmetrically with longitude toward the terminators.Comment: JWST ERS bright star observations. Uploaded to inform JWST Cycle 2 proposals. Manuscript under review. 50 pages, 14 figures, 2 table
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Emergent Spectral Fluxes of Hot Jupiters: An Abrupt Rise in Dayside Brightness Temperature Under Strong Irradiation

The Astronomical Journal American Astronomical Society 165:3 (2023) 104

Authors:

Drake Deming, Michael R Line, Heather A Knutson, Ian JM Crossfield, Eliza M-R Kempton, Thaddeus D Komacek, Nicole L Wallack, Guangwei Fu
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