PAPER / ARXIV:2609.13433
Austin Rothermich , Jacqueline K. Faherty , Ben Burningham , Catherine Manea , Emily Calamari , Genaro Suárez , Daniella C. Bardalez Gagliuffi , John M. Brewer , Kelle L. Cruz , Josefine Gaarn , Jonathan Gagné , Eileen C. Gonzales , Marina E. Gemma , Viktória Kecskeméthy , Mark S. Marley , Caprice L. Phillips , Channon Visscher , Johanna M. Vos , Niall Whiteford
RESUMO
In this study, we present the full (97.3\% complete) 0.8--12.5 $\mu$m spectral energy distribution (SED) of an L/T transition object, CWISE J210640.16+250729.0 (CW2106), using the James Webb Space Telescope (JWST). We provide a full characterization of the host star's elemental abundances and age. We empirically derive the bolometric luminosity ($L_{\rm bol}\approx-4.825$ $\textup{L}_\odot$) of CW2106, and obtain estimates of its mass (M$\approx50-62$ M$_{\rm Jup}$), radius (R$\approx0.83-0.87$ R$_{\rm Jup}$), effective temperature ($T_{\rm eff}$$\approx1213$ K), and surface gravity ($\log~g$$\approx5.28$ dex). We find the near-infrared (near-IR) spectrum ($0.8-2.5 ~\mu$m) is best reproduced with cloudy atmospheric models while the mid-infrared (mid-IR) spectrum ($5-12.5 ~\mu$m) is best reproduced with cloudless models. This suggests a cloud layer restricted to only the deepest observable parts of the atmosphere and is qualified by the lack of a 9 $\mu$m silicate feature. Making use of the Mg/Si ratio of the primary, alongside thermochemical models, we predict the clouds in CW2106 to be composed primarily of enstatite (MgSiO$_3$), removing $\sim23\%$ of the bulk oxygen out of the atmosphere. Future retrieval studies will be able to help investigate the existence and full impact of these cloud species.
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