Impact of M-dwarf Stellar Wind and Photoevaporation on the Atmospheric Evolution of Small Planets
arXiv:2309.10942 · doi:10.1093/mnras/stad2557
Abstract
The evolution of a planet's atmosphere depends strongly on its host star's properties. When their host stars are younger, planets can experience stronger winds and EUV emissions. This is particularly true for planets orbiting M-dwarfs due to their close proximity to the host star. To determine if these planets retain an atmosphere, we consider the impacts from stellar wind and EUV fluxes in driving atmospheric escape throughout the planet's lifetime. For this, we determined the atmospheric mass loss due to stellar wind and photoevaporation on 4 planets in close orbit and 34 in their star's habitable zone (HZ). The M-dwarf host stars' wind velocity, density, and EUV flux were calculated through rotation period and X-ray flux scaling over time. The mass loss rate due to stellar wind and photoevaporation was then computed as a function of time and accumulated throughout the planet's age to determine the total atmospheric mass loss of the planet's initial H/He envelope. We find that for HZ planets at orbits 0.1 AU, stellar wind can only remove of the H/He envelope, while photoevaporation is essential for completely removing the H/He envelope of most targets. Moreover, due to either mechanism, most planets orbiting at 0.1 AU do not have their primordial envelope stripped. Overall, out of the 38 planets studied, 13 were predicted to have lost the primordial envelope due to photoevaporation, while 2 planets lost the envelope due to both stellar wind and photoevaporation.
12 pages, 5 figures, published in MNRAS
References in corpus (21)
- New evolutionary models for pre-main sequence and main sequence low-mass stars down to the hydrogen-burning limit
- Most 1.6 Earth-Radius Planets are not Rocky
- Extreme Water Loss and Abiotic O Buildup On Planets Throughout the Habitable Zones of M Dwarfs
- Roche lobe effects on the atmospheric loss of "Hot Jupiters"
- Planetary population synthesis coupled with atmospheric escape: a statistical view of evaporation
- The Monitor project: Rotation of low-mass stars in the open cluster NGC 2516
- XUV-driven mass loss from extrasolar giant planets orbiting active stars
- On the Age of the TRAPPIST-1 System
- The effects of stellar winds on the magnetospheres and potential habitability of exoplanets
- Magnetohydrodynamic Simulations of Hot Jupiter Upper Atmospheres
- A review of possible planetary atmospheres in the TRAPPIST-1 system
- The Boundary between Gas-rich and Gas-poor Planets
- The Interaction of Venus-like, M-dwarf Planets with the Stellar Wind of Their Host Star
- Hubble WFC3 Spectroscopy of the Habitable-zone Super-Earth LHS 1140 b
- The Equilibrium Temperature of Planets in Elliptical Orbits
- Detection of an Atmosphere on a Rocky Exoplanet
- The Influence of Coronal Mass Ejections on the Mass-loss Rates of Hot-Jupiters
- A tentative detection of He I in the atmosphere of GJ 1214b
- The high-energy environment and atmospheric escape of the mini-Neptune K2-18 b
- Effect of stellar wind induced magnetic fields on planetary obstacles of non-magnetized hot Jupiters
- Do the TRAPPIST-1 Planets Have Hydrogen-rich Atmospheres?