English

A mineralogical reason why all exoplanets cannot be equally oxidising

Earth and Planetary Astrophysics 2023-08-21 v1

Abstract

From core to atmosphere, the oxidation states of elements in a planet shape its character. Oxygen fugacity (fO2_2) is one parameter indicating these likely oxidation states. The ongoing search for atmospheres on rocky exoplanets benefits from understanding the plausible variety of their compositions, which depends strongly on their oxidation states -- and if derived from interior outgassing, on the fO2_2 at the top of their silicate mantles. This fO2_2 must vary across compositionally-diverse exoplanets, but for a given planet its value is unconstrained insofar as it depends on how iron (the dominant multivalent element) is partitioned between its 2+ and 3+ oxidation states. Here we focus on another factor influencing how oxidising a mantle is -- a factor modulating fO2_2 even at fixed Fe3+^{3+}/Fe2+^{2+} -- the planet's mineralogy. Only certain minerals (e.g., pyroxenes) incorporate Fe3+^{3+}. Having such minerals in smaller mantle proportions concentrates Fe3+^{3+}, increasing fO2_2. Mineral proportions change within planets according to pressure, and between planets according to bulk composition. Constrained by observed host star refractory abundances, we calculate a minimum fO2_2 variability across exoplanet mantles, of at least two orders of magnitude, due to mineralogy alone. This variability is enough to alter by a hundredfold the mixing ratio of SO2_2 directly outgassed from these mantles. We further predict that planets orbiting high-Mg/Si stars are more likely to outgas detectable amounts of SO2_2 and H2_2O; and for low-Mg/Si stars, detectable CH4_4, all else equal. Even absent predictions of Fe3+^{3+} budgets, general insights can be obtained into how oxidising an exoplanet's mantle is.

Keywords

Cite

@article{arxiv.2308.09505,
  title  = {A mineralogical reason why all exoplanets cannot be equally oxidising},
  author = {Claire Marie Guimond and Oliver Shorttle and Sean Jordan and John F. Rudge},
  journal= {arXiv preprint arXiv:2308.09505},
  year   = {2023}
}

Comments

16 pages, 7 figures, accepted for publication in MNRAS

R2 v1 2026-06-28T11:58:42.412Z