English

Evidence for a volcanic atmosphere on the sub-Earth L98-59b

Earth and Planetary Astrophysics 2025-02-03 v1

Abstract

Assessing the prevalence of atmospheres on rocky planets around M-dwarf stars is a top priority of exoplanet science. High-energy activity from M-dwarfs can destroy the atmospheres of these planets, which could explain the lack of atmosphere detections to date. Volcanic outgassing has been proposed as a mechanism to replenish the atmospheres of tidally-heated rocky planets. L 98-59 b, a sub-Earth transiting a nearby M dwarf, was recently identified as the most promising exoplanet to detect a volcanic atmosphere. We present the transmission spectrum of L 98-59 b from four transits observed with JWST NIRSpec G395H. Although the airless model provides an adequate fit to the data based on its χ2\chi^2, an SO2_2 atmosphere is preferred by 3.6σ\sigma over a flat line in terms of the Bayesian evidence. Such an atmosphere would likely be in a steady state where volcanism balances escape. If so, L 98-59 b must experience at least eight times as much volcanism and tidal heating per unit mass as Io. If volcanism is driven by runaway melting of the mantle, we predict the existence of a subsurface magma ocean in L 98-59 b extending up to Rp6090%R_p\sim 60-90\%. An SO2_2-rich volcanic atmosphere on L 98-59 b would be indicative of an oxidized mantle with an oxygen fugacity of fO2>IW+2.7f\rm{O}_2>IW+2.7, and it would imply that L 98-59 b must have retained some of its volatile endowment despite its proximity to its star. Our findings suggest that volcanism may revive secondary atmospheres on tidally heated rocky planets around M-dwarfs.

Keywords

Cite

@article{arxiv.2501.18680,
  title  = {Evidence for a volcanic atmosphere on the sub-Earth L98-59b},
  author = {Aaron Bello-Arufe and Mario Damiano and Katherine A. Bennett and Renyu Hu and Luis Welbanks and Ryan J. MacDonald and Darryl Z. Seligman and David K. Sing and Armen Tokadjian and Apurva Oza and Jeehyun Yang},
  journal= {arXiv preprint arXiv:2501.18680},
  year   = {2025}
}

Comments

Accepted for publication in ApJL, 22 pages, 13 figures