The First Dedicated Survey of Atmospheric Escape from Planets Orbiting F Stars

Fuente: arXiv
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Main Authors: Saidel, Morgan, Vissapragada, Shreyas, Knutson, Heather, Schreyer, Ethan, Greklek-McKeon, Mike, Barrientos, Jonathan Gomez, Levine, W. Garrett, Gascón, Carlos, King, George, MacLeod, Morgan, Im, Haedam, Tusay, Nick
Format: Preprint
Published: 2025
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author Saidel, Morgan
Vissapragada, Shreyas
Knutson, Heather
Schreyer, Ethan
Greklek-McKeon, Mike
Barrientos, Jonathan Gomez
Levine, W. Garrett
Gascón, Carlos
King, George
MacLeod, Morgan
Im, Haedam
Tusay, Nick
author_facet Saidel, Morgan
Vissapragada, Shreyas
Knutson, Heather
Schreyer, Ethan
Greklek-McKeon, Mike
Barrientos, Jonathan Gomez
Levine, W. Garrett
Gascón, Carlos
King, George
MacLeod, Morgan
Im, Haedam
Tusay, Nick
contents Hydrodynamic escape can strip the envelopes of close-in exoplanets, but most observations of atmospheric mass loss to date have been confined to planets orbiting K and M dwarfs. A growing body of detections of atmospheric escape from planets orbiting early-type stars indicates that they may have significantly stronger and more extended outflows than planets orbiting cooler stars. However, it is unclear whether this limited sample of planets is representative of all gas giants orbiting early-type stars. Motivated by this question, we initiated the first dedicated survey of atmospheric escape from gas giants orbiting F stars in order to understand how their distinct radiation environments shape planetary outflows. We observed ten transits of six planets in an ultra-narrowband filter centered on the metastable helium line using Palomar/WIRC. We report strong ($>3σ$) detections of atmospheric escape for WASP-12~b and WASP-180~A~b, tentative ($>2σ$) detections for WASP-93~b and HAT-P-8~b, and non-detections for WASP-103~b and KELT-7~b. We fit these measurements with a 1D Parker wind model to derive corresponding mass-loss rates, and combine our results with literature measurements to obtain an updated picture of mass loss from planets orbiting early-type stars. Our results indicate that the observed variation in mass-loss rates can be explained by a combination of Roche filling factor and XUV luminosity, and disfavors NUV-driven escape models.
format Preprint
id arxiv_https___arxiv_org_abs_2510_05240
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle The First Dedicated Survey of Atmospheric Escape from Planets Orbiting F Stars
Saidel, Morgan
Vissapragada, Shreyas
Knutson, Heather
Schreyer, Ethan
Greklek-McKeon, Mike
Barrientos, Jonathan Gomez
Levine, W. Garrett
Gascón, Carlos
King, George
MacLeod, Morgan
Im, Haedam
Tusay, Nick
Earth and Planetary Astrophysics
Hydrodynamic escape can strip the envelopes of close-in exoplanets, but most observations of atmospheric mass loss to date have been confined to planets orbiting K and M dwarfs. A growing body of detections of atmospheric escape from planets orbiting early-type stars indicates that they may have significantly stronger and more extended outflows than planets orbiting cooler stars. However, it is unclear whether this limited sample of planets is representative of all gas giants orbiting early-type stars. Motivated by this question, we initiated the first dedicated survey of atmospheric escape from gas giants orbiting F stars in order to understand how their distinct radiation environments shape planetary outflows. We observed ten transits of six planets in an ultra-narrowband filter centered on the metastable helium line using Palomar/WIRC. We report strong ($>3σ$) detections of atmospheric escape for WASP-12~b and WASP-180~A~b, tentative ($>2σ$) detections for WASP-93~b and HAT-P-8~b, and non-detections for WASP-103~b and KELT-7~b. We fit these measurements with a 1D Parker wind model to derive corresponding mass-loss rates, and combine our results with literature measurements to obtain an updated picture of mass loss from planets orbiting early-type stars. Our results indicate that the observed variation in mass-loss rates can be explained by a combination of Roche filling factor and XUV luminosity, and disfavors NUV-driven escape models.
title The First Dedicated Survey of Atmospheric Escape from Planets Orbiting F Stars
topic Earth and Planetary Astrophysics
url https://arxiv.org/abs/2510.05240