Volatile-rich Sub-Neptunes as Hydrothermal Worlds: The Case of K2-18 b

Cindy N. Luu, Xinting Yu, 馨婷 余, Christopher R. Glein, Hamish Innes, Artyom Aguichine, Joshua Krissansen-Totton, Julianne I. Moses, Shang-Min Tsai, Xi Zhang, Ngoc Truong and Jonathan J. Fortney
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Abstract

Temperate exoplanets between the sizes of Earth and Neptune, known as “sub-Neptunes,” have emerged as intriguing targets for astrobiology. It is unknown whether these planets resemble Earth-like terrestrial worlds with a habitable surface, Neptune-like giant planets with deep atmospheres and no habitable surface, or something exotic in between. Recent JWST transmission spectroscopy observations of the canonical sub-Neptune, K2-18 b, revealed ~1% CH4, ~1% CO2, and a nondetection of CO in the atmosphere. While previous studies proposed that the observed atmospheric composition could help constrain the lower atmosphere's conditions and determine the interior structure of sub-Neptunes like K2-18 b, the possible interactions between the atmosphere and a hot, supercritical water ocean at its base remain unexplored. In this work, we investigate whether a global supercritical water ocean, resembling a planetary-scale hydrothermal system, can explain these observations on K2-18 b–like sub-Neptunes through equilibrium aqueous geochemical calculations. We find that the observed atmospheric CH4/CO2 ratio implies a minimum ocean temperature of ~710 K, whereas the corresponding CO/CO2 ratio allows ocean temperatures up to ~1070 K. These results indicate that a global supercritical water ocean on K2-18 b is plausible. While life cannot survive in such an ocean, this work represents the first step toward understanding how a global supercritical water ocean may influence observable atmospheric characteristics on volatile-rich sub-Neptunes. Future observations with better-constrained CO and NH3 mixing ratios could further help distinguish between possible interior compositions of K2-18 b.
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富含挥发物的亚海王星作为热液世界:以k2 - 18b为例
大小介于地球和海王星之间的温带系外行星,被称为“亚海王星”,已经成为天体生物学的有趣目标。目前尚不清楚这些行星是否类似于有可居住表面的类地行星,或者类似海王星的巨行星,有深大气层,没有可居住的表面,或者介于两者之间。最近JWST对典型的亚海王星k2 - 18b的透射光谱观测显示,大气中有~1%的CH4和~1%的CO2,但未检测到CO。虽然先前的研究提出,观测到的大气成分可以帮助限制低层大气的条件,并确定像k2 - 18b这样的亚海王星的内部结构,但大气与底部高温超临界海洋之间可能的相互作用仍未被探索。在这项工作中,我们研究了全球超临界水海洋,类似于行星尺度的热液系统,是否可以通过平衡水地球化学计算来解释k2 - 18b类亚海王星上的这些观测结果。我们发现观测到的大气CH4/CO2比值意味着最低海洋温度为~710 K,而相应的CO/CO2比值允许海洋温度高达~1070 K。这些结果表明,k2 - 18b上可能存在全球性的超临界海洋。虽然生命无法在这样的海洋中生存,但这项工作代表了了解全球超临界水海洋如何影响富挥发物亚海王星上可观测到的大气特征的第一步。未来对CO和NH3混合比约束更好的观测可以进一步帮助区分k2 - 18b可能的内部组成。
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