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Four-of-a-kind? Comprehensive atmospheric characterisation of the HR 8799 planets with VLTI/GRAVITY

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arxiv 2404.03776 v2 pith:67BEZB6I submitted 2024-04-04 astro-ph.EP

classification astro-ph.EP
keywords planetsatmosphericcloudsmodelwellbayesiancharacterisationchemistry
verification ladder T0 review T1 audit T2 compute T3 formal
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abstract

With four companions at separations from 16 to 71 au, HR 8799 is a unique target for direct imaging, presenting an opportunity for the comparative study of exoplanets with a shared formation history. Combining new VLTI/GRAVITY observations obtained within the ExoGRAVITY program with archival data, we perform a systematic atmospheric characterisation of all four planets. We explore different levels of model flexibility to understand the temperature structure, chemistry and clouds of each planet using both petitRADTRANS atmospheric retrievals and fits to self-consistent radiative-convective equilibrium models. Using Bayesian Model Averaging to combine multiple retrievals, we find that the HR 8799 planets are highly enriched in metals, with [M/H] $\gtrsim$1, and have stellar to super-stellar C/O ratios. The C/O ratio increases with increasing separation from $0.55^{+0.12}_{-0.10}$ for d to $0.78^{+0.03}_{-0.04}$ for b, with the exception of the innermost planet which has a C/O ratio of $0.87\pm0.03$. By retrieving a quench pressure and using a disequilibrium chemistry model we derive vertical mixing strengths compatible with predictions for high-metallicity, self-luminous atmospheres. Bayesian evidence comparisons strongly favour the presence of HCN in HR 8799 c and e, as well as CH$_{4}$ in HR 8799 c, with detections at $>5\sigma$ confidence. All of the planets are cloudy, with no evidence for patchiness. The clouds of c, d and e are best fit by silicate clouds lying above a deep iron cloud layer, while the clouds of the cooler HR 8799 b are more likely composed of Na$_{2}$S. With well defined atmospheric properties, future exploration of this system is well positioned to unveil further detail in these planets, extending our understanding of the composition, structure, and formation history of these siblings.

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Forward citations

Cited by 3 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. The JWST Early Release Science Program for Direct Observations of Exoplanetary Systems VIII: patchy forsterite and enstatite clouds in the atmosphere of VHS 1256 b, retrieval lessons learned and outlook to the future

    astro-ph.EP 2026-08 conditional novelty 6.0 of 10

    A retrieval of the full JWST 1-18 micron spectrum of VHS 1256 b prefers patchy forsterite and enstatite clouds over an iron deck, but the ranking is conditioned on a 10x NIRSpec error inflation.

  2. Atmospheric abundances and bulk properties of the binary brown dwarf Gliese 229 Bab from JWST/MIRI spectroscopy

    astro-ph.SR 2024-11 conditional novelty 6.0 of 10

    Fitting JWST/MIRI 4.75-14 micron spectra with a binary brown dwarf model yields C/O=0.65+/-0.05 and [M/H]=0.00 for Gliese 229 Bab, matching the host star.

  3. Eighteen Exoplanet Host Stars from the NPOI Data Archive

    astro-ph.SR 2025-06 conditional novelty 4.0 of 10

    Using interferometric radii and temperatures, the authors derived MIST-model masses and ages for 18 exoplanet host stars and recomputed their planet masses and habitable zones.

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