GJ 229B: Solving the Puzzle of the First Known T-Dwarf with the APOLLO Retrieval Code
arXiv:2203.11706 · doi:10.3847/1538-4357/ac5590
Abstract
GJ 229B was the first T-dwarf to be discovered in 1995, and its spectrum has been more thoroughly observed than most other brown dwarfs. Yet a full spectroscopic analysis of its atmosphere has not been done with modern techniques. This spectrum has several peculiar features, and recent dynamical estimates of GJ 229B's mass and orbit have disagreed widely, both of which warrant closer investigation. With a separation of tens of AU from its host star, GJ 229B falls near the border of the planet and stellar population formation regimes, so its atmosphere could provide clues to formation processes for intermediate objects of this type. In an effort to resolve these questions, we performed retrievals on published spectra of GJ 229B over a wide range of wavelengths (0.5-5.1 ) using the open-source APOLLO code. Based on these retrievals, we present a more precise mass estimate of and an effective temperature estimate of K, which are more consistent with evolutionary models for brown dwarfs and suggest an older age for the system of 1.0 Gyr. We also present retrieved molecular abundances for the atmosphere, including replicating the previously-observed high CO abundance, and discuss their implications for the formation and evolution of this object. This retrieval effort will give us insight into how to study other brown dwarfs and directly-imaged planets, including those observed with JWST and other next-generation telescopes.
32 pages, 11 figures, 5 tables, accepted for publication in ApJ
References in corpus (7)
- Direct Imaging of Multiple Planets Orbiting the Star HR 8799
- On the radiative equilibrium of irradiated planetary atmospheres
- Bayesian search for low-mass planets around nearby M dwarfs. Estimates for occurrence rate based on global detectability statistics
- Uniform Atmospheric Retrieval Analysis of Ultracool Dwarfs I: Characterizing Benchmarks, Gl570D and HD3651B
- Tidally-Induced Radius Inflation of Sub-Neptunes
- An Information-Theoretic Approach to Optimize JWST Observations and Retrievals of Transiting Exoplanet Atmospheres
- Search for Nearby Earth Analogs. II. detection of five new planets, eight planet candidates, and confirmation of three planets around nine nearby M dwarfs