Is the high-energy environment of K2-18b special?

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Hauptverfasser: Rukdee, S., Güdel, M., Vilović, I., Poppenhäger, K., Saikia, S. Boro, Buchner, J., Stelzer, B., Roccetti, G., Seidel, J. V., Burwitz, V.
Format: Preprint
Veröffentlicht: 2025
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author Rukdee, S.
Güdel, M.
Vilović, I.
Poppenhäger, K.
Saikia, S. Boro
Buchner, J.
Stelzer, B.
Roccetti, G.
Seidel, J. V.
Burwitz, V.
author_facet Rukdee, S.
Güdel, M.
Vilović, I.
Poppenhäger, K.
Saikia, S. Boro
Buchner, J.
Stelzer, B.
Roccetti, G.
Seidel, J. V.
Burwitz, V.
contents K2-18b lies near the radius valley that separates super-Earths and sub-Neptunes, marking a key transitional regime in planetary and atmospheric composition. The system offers a valuable opportunity to study how M-dwarf high-energy stellar radiation influences atmospheric stability and the potential for sustaining volatile species, especially important in the context of the upcoming ELT and its ANDES spectrograph. This study characterizes the high-energy environment of K2-18 with X-ray observations from eROSITA, the soft X-ray instrument on the Spectrum-Roentgen-Gamma (SRG) mission, Chandra, and XMM-Newton. We derive a representative 0.2-2 keV X-ray flux with an APEC thermal plasma model fitted with the Bayesian X-ray Analysis (BXA). With the observed X-ray flux from the exoplanet host star, we estimate the photoevaporative mass loss of exoplanet K2-18b using the energy-limited model. In addition, we examine the thermal structure of the system based on a hydrodynamic model. In 100 ks XMM-Newton observation we identified K2-18 as a very faint X-ray source with $\mathrm{F_X = 10^{-15}\ erg\,s^{-1}\,cm^{-2}}$, with an activity level of (Lx/Lbol) $\sim 10^{-5}$. A small flare has been detected during the observation. The planet is irradiated by an X-ray flux of $\mathrm{F_{pl,X} = 12\pm3\ erg\,s^{-1}\,cm^{-2}}$. The X-ray flux measurement of K2-18 gives important limitations for atmospheric escape and photochemical modeling of its exoplanets. Despite its near orbit around an M-dwarf star, K2-18b's low activity level environment suggests that it can retain an atmosphere, supporting recent tentative detections of atmospheres.
format Preprint
id arxiv_https___arxiv_org_abs_2510_06939
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Is the high-energy environment of K2-18b special?
Rukdee, S.
Güdel, M.
Vilović, I.
Poppenhäger, K.
Saikia, S. Boro
Buchner, J.
Stelzer, B.
Roccetti, G.
Seidel, J. V.
Burwitz, V.
Earth and Planetary Astrophysics
High Energy Astrophysical Phenomena
Solar and Stellar Astrophysics
K2-18b lies near the radius valley that separates super-Earths and sub-Neptunes, marking a key transitional regime in planetary and atmospheric composition. The system offers a valuable opportunity to study how M-dwarf high-energy stellar radiation influences atmospheric stability and the potential for sustaining volatile species, especially important in the context of the upcoming ELT and its ANDES spectrograph. This study characterizes the high-energy environment of K2-18 with X-ray observations from eROSITA, the soft X-ray instrument on the Spectrum-Roentgen-Gamma (SRG) mission, Chandra, and XMM-Newton. We derive a representative 0.2-2 keV X-ray flux with an APEC thermal plasma model fitted with the Bayesian X-ray Analysis (BXA). With the observed X-ray flux from the exoplanet host star, we estimate the photoevaporative mass loss of exoplanet K2-18b using the energy-limited model. In addition, we examine the thermal structure of the system based on a hydrodynamic model. In 100 ks XMM-Newton observation we identified K2-18 as a very faint X-ray source with $\mathrm{F_X = 10^{-15}\ erg\,s^{-1}\,cm^{-2}}$, with an activity level of (Lx/Lbol) $\sim 10^{-5}$. A small flare has been detected during the observation. The planet is irradiated by an X-ray flux of $\mathrm{F_{pl,X} = 12\pm3\ erg\,s^{-1}\,cm^{-2}}$. The X-ray flux measurement of K2-18 gives important limitations for atmospheric escape and photochemical modeling of its exoplanets. Despite its near orbit around an M-dwarf star, K2-18b's low activity level environment suggests that it can retain an atmosphere, supporting recent tentative detections of atmospheres.
title Is the high-energy environment of K2-18b special?
topic Earth and Planetary Astrophysics
High Energy Astrophysical Phenomena
Solar and Stellar Astrophysics
url https://arxiv.org/abs/2510.06939