The Effects of Non-ideal Mixing in Planetary Magma Oceans and Atmospheres
arXiv:2602.05917 · doi:10.3847/1538-4357/ae434d
Abstract
Sub-Neptunes with hydrogen-rich envelopes are expected to sustain long-lived magma oceans that continuously exchange volatiles with their overlying atmospheres. Capturing these interactions is key to understanding the chemical evolution and present-day diversity of sub-Neptunes, super-Earths, and terrestrial planets, particularly in light of new JWST observations and upcoming missions. Recent advances in both geochemistry and astrophysics now allow the integration of experimental constraints and thermodynamic models across melt, metal, and gas phases. Here we extend a global chemical equilibrium model to include non-ideal behavior in all three phases. Our framework combines fugacity corrections for gas species with activity coefficients for silicate and metal species, enabling a fully coupled description of volatile partitioning. We show that for planetary embryos (0.5 M at 2350 K), non-ideality introduces only modest corrections to atmosphere-magma ocean interface (AMOI) pressures, volatile inventories, and interior compositions. In contrast, for sub-Neptunes with higher temperatures ( 3000 K) and pressures, non-ideal effects are more pronounced, though still modest in absolute termstypically within 20% and at most a factor of two. Including activity and fugacity coefficients simultaneously increases the AMOI pressure, enhances water retention in the mantle and the envelope. Our results demonstrate that non-ideality must be treated globally: applying corrections to only one phase leads to incomplete or even misleading trends. These findings highlight the importance of self-consistent global thermodynamic treatments for interpreting atmospheric spectra and interior structures of sub-Neptunes and super-Earths.
Accepted for publication in The Astrophysical Journal
References in corpus (19)
- Chemistry of Silicate Atmospheres of Evaporating Super-Earths
- A new equation of state for dense hydrogen-helium mixtures
- Habitability and Biosignatures of Hycean Worlds
- AQUA: A Collection of HO Equations of State for Planetary Models
- Atmosphere Origins for Exoplanet Sub-Neptunes
- Earth shaped by primordial H atmospheres
- Water on Hot Rocky Exoplanets
- Superabundance of Exoplanet Sub-Neptunes Explained by Fugacity Crisis
- Distinguishing oceans of water from magma on mini-Neptune K2-18b
- Atmospheres as windows into sub-Neptune interiors: coupled chemistry and structure of hydrogen-silane-water envelopes
- The importance of silicate vapor in determining the structure, radii, and envelope mass fractions of sub-Neptunes
- Role of magma oceans in controlling carbon and oxygen of sub-Neptune atmospheres
- Atmospheric C/O Ratios of Sub-Neptunes with Magma Oceans: Homemade rather than Inherited
- Sub-Neptunes Are Drier Than They Seem: Rethinking the Origins of Water-Rich Worlds
- Magma ocean interactions can explain JWST observations of the sub-Neptune TOI-270 d
- Constraining exoplanet interiors using observations of their atmospheres
- Competing chemical signatures in the atmosphere of TOI-270 d: Inference of sulfur and carbon chemistry
- Diversity of low-mass planet atmospheres in the C-H-O-N-S-Cl system with interior dissolution, nonideality, and condensation: Application to TRAPPIST-1e and sub-Neptunes
- Redefining interiors and envelopes: hydrogen-silicate miscibility and its consequences for the structure and evolution of sub-Neptunes