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Role of magma oceans in controlling carbon and oxygen of sub-Neptune atmospheres
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abstract
Most exoplanets with a few Earth radii are more inflated than bare-rock planets with the same mass, indicating a substantial volatile amount. Neither the origin of the volatiles nor the planet's bulk composition can be constrained from the mass-radius relation alone, and the spectral characterization of their atmospheres is needed to solve this degeneracy. Previous studies showed that chemical interaction between accreted volatile and possible molten rocky surface (i.e., magma ocean) can greatly affects the atmospheric composition. However, a variety in the atmospheric compositions of such planets with different properties remains elusive. In this work, we examine the dependence of atmospheric H, O, and C on planetary parameters (atmospheric thickness, planetary mass, equilibrium temperature, and magma properties such as redox state) assuming nebula gas accretion on an Earth-like core, using an atmosphere-magma chemical equilibrium model. Consistent with previous work, we show that atmospheric $\rm H_{2}O$ fraction on a fully molten rocky interior with an Earth-like redox state is on the order of $10^{-2}$-$10^{-1}$ regardless of other planetary parameters. Despite the solubility difference between H- and C-bearing species, C/H increases only a few times above the nebula value except for atmospheric pressure $\lesssim$1000 bar and $\rm H_{2}O$ fraction $\gtrsim$10\%. This results in a negative O/H-C/O trend and depleted C/O below one-tenth of the nebula gas value under an oxidized atmosphere, which could provide a piece of evidence of rocky interior and endogenic water. We also highlight the importance of constraints on the high-pressure material properties for interpreting the magma-atmospheric interaction of inflated planets.
Forward citations
Cited by 3 Pith papers
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Volatile-bearing mineral atmospheres of hot rocky exoplanets as probes of interior state and composition
A coupled atmosphere-interior model shows that magma ocean oxygen fugacity controls the spectral appearance of hot rocky exoplanets, with SO2 and H2O/CO2 band ratios as the key diagnostics.
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Monosilane Worlds: Sub-Neptunes with Atmospheres Shaped by Reduced Magma Oceans
Modeling shows that H2O dissolution into an FeO-free magma ocean can maintain SiH4 at 0.1 to 10 percent throughout sub-Neptune atmospheres, unlike prior models predicting depletion.
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TOI-421 b: A Hot Sub-Neptune with a Haze-Free, Low Mean Molecular Weight Atmosphere
TOI-421 b, a 920 K sub-Neptune around a Sun-like star, has a clear, hydrogen-dominated, near-solar-metallicity atmosphere with detected water, based on JWST transmission spectroscopy.
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