English

Water on Hot Rocky Exoplanets

Earth and Planetary Astrophysics 2021-03-24 v1

Abstract

Data suggest that most rocky exoplanets with orbital period pp << 100 d ("hot" rocky exoplanets) formed as gas-rich sub-Neptunes that subsequently lost most of their envelopes, but whether these rocky exoplanets still have atmospheres is unknown. We identify a pathway by which 1-1.7 REarthR_{Earth} (1-10 MEarthM_{Earth}) rocky exoplanets with orbital periods of 10-100 days can acquire long-lived 10-2000 bar atmospheres that are H2_2O-dominated, with mean molecular weight >>10. These atmospheres form during the planets' evolution from sub-Neptunes into rocky exoplanets. H2_2O that is made by reduction of iron oxides in the silicate magma is highly soluble in the magma, forming a dissolved reservoir that is protected from loss so long as the H2_2-dominated atmosphere persists. The large size of the dissolved reservoir buffers the H2_2O atmosphere against loss after the H2_2 has dispersed. Within our model, a long-lived, water-dominated atmosphere is a common outcome for efficient interaction between a nebula-derived atmosphere (peak atmosphere mass fraction 0.1-0.6 wt%) and oxidized magma (>>5 wt% FeO), followed by atmospheric loss. This idea predicts that most rocky planets that have orbital periods of 10-100 days and that have radii within 0.1-0.2 REarthR_{Earth} of the lower edge of the radius valley still retain H2_2O atmospheres. This prediction is imminently testable with JWST and has implications for the interpretation of data for transiting super-Earths.

Keywords

Cite

@article{arxiv.2103.07753,
  title  = {Water on Hot Rocky Exoplanets},
  author = {Edwin S. Kite and Laura Schaefer},
  journal= {arXiv preprint arXiv:2103.07753},
  year   = {2021}
}

Comments

Astrophysical Journal Letters, in press

R2 v1 2026-06-24T00:06:38.307Z