Sub-Neptunes Are Drier Than They Seem: Rethinking the Origins of Water-Rich Worlds
arXiv:2507.00765 · doi:10.3847/2041-8213/adff73
Abstract
Recent claims of biosignature gases in sub-Neptune atmospheres have renewed interest in water-rich sub-Neptunes with surface oceans, often referred to as Hycean planets. These planets are hypothesized to form beyond the snow line, accreting large amounts of HO (>10 wt%) before migrating inward. However, current interior models often neglect chemical equilibration between primordial atmospheres and molten interiors. Here, we compute global chemical equilibrium states for a synthetic population of sub-Neptunes with magma oceans. Although many initially accrete 5-30 wt% water, interior-atmosphere interactions destroy most of it, reducing final HO mass fractions to below 1.5 wt%. As a result, none meet the threshold for Hycean planets. Despite that, we find HO-dominated atmospheres exclusively on planets that accreted the least ice. These planets form inside the snow line, are depleted in carbon and hydrogen, and develop small envelopes with envelope mass fractions below 1%, dominated by endogenic water. In contrast, planets formed beyond the snow line accrete more volatiles, but their water is largely converted to H gas or sequestered into the interior, resulting in low atmospheric HO mass fractions. Most HO-rich envelopes are also fully miscible with H, making a separate water layer unlikely. Our results topple the conventional link between ice accretion and water-rich atmospheres, showing instead that HO-dominated envelopes emerge through chemical equilibration in hydrogen-poor planets formed inside the snow line.
Accepted for publication in The Astrophysical Journal Letters
References in corpus (24)
- Ranges of Atmospheric Mass and Composition of Super Earth Exoplanets
- The New Generation Planetary Population Synthesis (NGPPS). IV. Planetary systems around low-mass stars
- The New Generation Planetary Population Synthesis (NGPPS). I. Bern global model of planet formation and evolution, model tests, and emerging planetary systems
- Habitability and Biosignatures of Hycean Worlds
- The New Generation Planetary Population Synthesis (NGPPS). II. Planetary population of solar-like stars and overview of statistical results
- Irradiated ocean planets bridge super-Earth and sub-Neptune populations
- Atmosphere Origins for Exoplanet Sub-Neptunes
- Earth shaped by primordial H atmospheres
- Grain opacity and the bulk composition of extrasolar planets. II. An analytical model for the grain opacity in protoplanetary atmospheres
- Water on Hot Rocky Exoplanets
- Superabundance of Exoplanet Sub-Neptunes Explained by Fugacity Crisis
- From planetesimals to planets: volatile molecules
- Formation and composition of planets around very low mass stars
- Distinguishing oceans of water from magma on mini-Neptune K2-18b
- Majority of water hides deep in the interiors of exoplanets
- A fading radius valley towards M-dwarfs, a persistent density valley across stellar types
- Dry or water world? How the water contents of inner sub-Neptunes constrain giant planet formation and the location of the water ice line
- The Metal-Silicate Partitioning of Carbon During Earth's Accretion and its Distribution in the Early Solar System
- 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
- In situ accretion of gaseous envelopes on to planetary cores embedded in evolving protoplanetary discs
- 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
- Mixing is easy: New insights for cosmochemical evolution from pre-stellar core collapse
Cited by in corpus (9)
- Coupled Thermal-Chemical Evolution Models of Sub-Neptunes Reveal Atmospheric Signatures of Their Formation Location
- The Effects of Non-ideal Mixing in Planetary Magma Oceans and Atmospheres
- Exploring the conditions for forming planetesimals by the streaming instability and planetary systems by pebble accretion
- Super-Earth masses and stellar abundances from NIRPS reveal tentative evidence for water-rich formation around M dwarfs
- TOI-7166 b: A Habitable Zone mini-Neptune planet around a nearby low-mass star
- KRONOS I: The m JWST Transmission Spectrum of the 23 Myr V1298 Tau c
- Oxygen left behind: Atmospheric Enrichment due to Fractionation in Sub-Neptunes using BOREAS
- A Validated Low-to-Intermediate Mass Planetary Interior Structure Model and New Mass-Radius Relations
- JWST unveils a high mean molecular weight atmosphere for mini-Neptune TOI-1130b: Evidence for formation beyond the water ice line