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The high-energy environment of the heavy sub-Earth GJ 367 b indicates likely complete evaporation of its atmosphere

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arxiv 2401.17302 v2 pith:CRG7P6Z5 submitted 2024-01-30 astro-ph.SR astro-ph.EP

classification astro-ph.SRastro-ph.EP
keywords staratmospherehostplanetactivitypotentialveryx-ray
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The planet GJ 367 b is a recently discovered high-density sub-Earth orbiting an M dwarf star. Its composition was modelled to be predominantly iron with a potential remainder of a hydrogen-helium envelope. Here we report an X-ray detection of this planet's host star for the first time, using data from the spectro-imaging X-ray telescope eROSITA onboard the Spectrum-Roentgen-Gamma (SRG) mission. We characterise the magnetic activity of the host star from the X-ray data and estimate its effects on a potential atmosphere of the planet. We find that despite the very low activity level of the host star the expected mass loss rates, both under core-powered and photoevaporative mass loss regimes, are so high that a potential primordial or outgassed atmosphere would evaporate very quickly. Since the activity level of the host star indicates that the system is several Gigayears old, it is very unlikely that the planet currently still hosts any atmosphere.

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  1. Probing habitable regions with SRG/eROSITA

    astro-ph.EP 2026-02 conditional novelty 5.0 of 10

    Most of the 3,750 X-ray-detected main-sequence stars bathe their habitable zones in ~1-10^5 erg cm^-2 s^-1 of XUV radiation, 10-100,000x the Sun's present level, implying strong atmospheric erosion for hypothetical Ea...

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