English

WASP-107b's density is even lower: a case study for the physics of planetary gas envelope accretion and orbital migration

Earth and Planetary Astrophysics 2021-01-27 v1 Instrumentation and Methods for Astrophysics

Abstract

With a mass in the Neptune regime and a radius of Jupiter, WASP-107b presents a challenge to planet formation theories. Meanwhile, the planet's low surface gravity and the star's brightness also make it one of the most favorable targets for atmospheric characterization. Here, we present the results of an extensive 4-year Keck/HIRES radial-velocity (RV) follow-up program of the WASP-107 system and provide a detailed study of the physics governing the accretion of its gas envelope. We reveal that WASP-107b's mass is only 1.8 Neptune masses (Mb=30.5±1.7M_b = 30.5 \pm 1.7 MM_\oplus). The resulting extraordinarily low density suggests that WASP-107b has a H/He envelope mass fraction of >85> 85% unless it is substantially inflated. The corresponding core mass of <4.6<4.6 MM_\oplus at 3σ\sigma is significantly lower than what is traditionally assumed to be necessary to trigger massive gas envelope accretion. We demonstrate that this large gas-to-core mass ratio most plausibly results from the onset of accretion at 1\gtrsim 1 AU onto a low-opacity, dust-free atmosphere and subsequent migration to the present-day ab=0.0566±0.0017a_b = 0.0566 \pm 0.0017 AU. Beyond WASP-107b, we also detect a second more massive planet (Mcsini=0.36±0.04M_c \sin i = 0.36 \pm 0.04 MJM_{J}) on a wide eccentric orbit (ec=0.28±0.07e_c = 0.28 \pm 0.07) which may have influenced the orbital migration and spin-orbit misalignment of WASP-107b. Overall, our new RV observations and envelope accretion modeling provide crucial insights into the intriguing nature of WASP-107b and the system's formation history. Looking ahead, WASP-107b will be a keystone planet to understand the physics of gas envelope accretion.

Keywords

Cite

@article{arxiv.2011.13444,
  title  = {WASP-107b's density is even lower: a case study for the physics of planetary gas envelope accretion and orbital migration},
  author = {Caroline Piaulet and Björn Benneke and Ryan A. Rubenzahl and Andrew W. Howard and Eve J. Lee and Daniel Thorngren and Ruth Angus and Merrin Peterson and Joshua E. Schlieder and Michael Werner and Laura Kreidberg and Tareq Jaouni and Ian J. M. Crossfield and David R. Ciardi and Erik A. Petigura and John Livingston and Courtney D. Dressing and Benjamin J. Fulton and Charles Beichman and Jessie L. Christiansen and Varoujan Gorjian and Kevin K. Hardegree-Ullman and Jessica Krick and Evan Sinukoff},
  journal= {arXiv preprint arXiv:2011.13444},
  year   = {2021}
}

Comments

Accepted for publication in AJ, 16 pages, 7 figures