The Dyn-Atmo Survey: JWST/NIRSpec spectroscopy of dynamical benchmark GJ 758 B
Alexander Madurowicz, Emily Rickman, Daniella Bardalez Gagliuffi, James Mang, Kim Ward-Duong, William O. Balmer, Brendan P. Bowler, Emily Calamari, Henry Dennen, Jacqueline K Faherty, Kyle Franson, Mark R. Giovinazzi, Lisseth Gonzales Quevedo, Kielan K. W. Hoch, Piper Lentz, Elena Manjavacas, Klara Matuszewska, Ashley Messier, Caroline V. Morley, Evert Nasedkin, Marshall Perrin, Laurent Pueyo, Jean-Baptiste Ruffio, Christopher A. Theissen, Jerry W. Xuan
Abstract
We present new JWST/NIRSpec IFU high contrast spectroscopic observations of the brown dwarf companion GJ 758 B. Extensive radial velocity monitoring of the primary has enabled high-precision measurements of the companion mass through characterization of their joint orbital dynamics. The combination of prior space- and ground-based photometry and spectroscopic observations in concert with a spectral model-independent mass makes this target an ideal benchmark for calibrating evolutionary models with known mass-age-luminosity degeneracies. A template-matching analysis on the NIRSpec/IFU data (F290LP,G395H; λ∈ [2.87-5.27] μm) detects the companion at the expected orbital position with incredible significance (265.2σ). Comprehensive spectral analysis including published datasets over a variety of different spectral model families reveal that an inference using a uniform radius prior is plagued by inaccurate posteriors. The atmospheric model degeneracy between metallicity, gravity, and clouds pull the inferred mass/gravity/radius to an unphysical portion of parameter space for all model families tested. A constrained inference with a gaussian prior on the mass can mitigate this issue but models without clouds still struggle to accurately reproduce the K-band photometry and result in mass inferences which are inconsistent with the dynamics. We explore modifying the spectral models with custom post-processed clouds and molecular abundance perturbations of ammonia and hydrogen sulfide. We find the best-fitting model includes clouds with no patchiness (hole fraction fhole = 0), a small fractional depletion in ammonia and moderate enhancement in hydrogen sulfide.
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