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JWST observations of K2-18b can be explained by a gas-rich mini-Neptune with no habitable surface

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arxiv 2401.11082 v2 pith:7GNUGTN6 submitted 2024-01-20 astro-ph.EP

classification astro-ph.EP
keywords hyceanatmospheredatajwstk2-18bmini-neptunebecausegas-rich
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abstract

JWST recently measured the transmission spectrum of K2-18b, a habitable-zone sub-Neptune exoplanet, detecting CH$_4$ and CO$_2$ in its atmosphere. The discovery paper argued the data are best explained by a habitable "Hycean" world, consisting of a relatively thin H$_2$-dominated atmosphere overlying a liquid water ocean. Here, we use photochemical and climate models to simulate K2-18b as both a Hycean planet and a gas-rich mini-Neptune with no defined surface. We find that a lifeless Hycean world is hard to reconcile with the JWST observations because photochemistry only supports $< 1$ part-per-million CH$_4$ in such an atmosphere while the data suggest about $\sim 1\%$ of the gas is present. Sustaining %-level CH$_4$ on a Hycean K2-18b may require the presence of a methane-producing biosphere, similar to microbial life on Earth $\sim 3$ billion years ago. On the other hand, we predict that a gas-rich mini-Neptune with $100 \times$ solar metallicity should have 4% CH$_4$ and nearly 0.1% CO$_2$, which are compatible with the JWST data. The CH$_4$ and CO$_2$ are produced thermochemically in the deep atmosphere and mixed upward to the low pressures sensitive to transmission spectroscopy. The model predicts H$_2$O, NH$_3$ and CO abundances broadly consistent with the non-detections. Given the additional obstacles to maintaining a stable temperate climate on Hycean worlds due to H$_2$ escape and potential supercriticality at depth, we favor the mini-Neptune interpretation because of its relative simplicity and because it does not need a biosphere or other unknown source of methane to explain the data.

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Cited by 3 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. A generalised microbial cell model for methane biosignature predictions

    astro-ph.EP 2026-07 conditional novelty 6.0 of 10

    A diffusion-limited microbial cell model predicts that smaller, longer-lived methanogens produce stronger methane biosignatures, and competition should drive alien life toward these traits.

  2. HD 35843: A Sun-like star hosting a long period sub-Neptune and inner super-Earth

    astro-ph.EP 2025-05 conditional novelty 6.0 of 10

    HD 35843 hosts a 9.90-day non-transiting planet (minimum mass 5.84 M⊕) and a 46.96-day transiting sub-Neptune (radius 2.54 R⊕, mass 11.32 M⊕).

  3. Escaping Helium and a Highly Muted Spectrum Suggest a Metal-Enriched Atmosphere on Sub-Neptune GJ3090b from JWST Transit Spectroscopy

    astro-ph.EP 2025-04 conditional novelty 6.0 of 10

    JWST transit spectroscopy of the sub-Neptune GJ 3090 b detects a weak helium signal and a muted infrared spectrum, indicating a metal-enriched atmosphere with >100x solar metallicity.

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