The Effect of Adiabatic Index on Radius Evolution and the Mass Loss
Arick Collander, Eve J. Lee
astro-ph.EP
Submitted: 2026-06-15
Comments: Submitted to ApJ. Comments are welcome
License: http://creativecommons.org/licenses/by/4.0/
The gist: Models that track the size evolution of exoplanets often assume a prescribed initial thermal state or a single adiabatic index to describe the planetary interior structure, the latter of which is
Terminology
Abstract
Models that track the size evolution of exoplanets often assume a prescribed initial thermal state or a single adiabatic index to describe the planetary interior structure, the latter of which is taken to be gamma about1.4 which is likely appropriate for evolved planets (1 Gyr). Extrapolating this high gamma to earlier ages (down to about million years old) is problematic since, according to thermodynamics, the adiabatic index of young planets is about 1.2, which is low enough to drastically change how interior mass is distributed. We quantify the effect of varying the adiabatic index from 1.2 to 1.4 on the expected radius of the exoplanet over time. We find that envelopes of larger adiabatic indices start puffier with all else equal and undergo faster radius contraction with accelerated mass loss. Assumption of high gamma can therefore overestimate the effect of mass loss in shaping the exoplanetary population, especially when young planets are considered. We highlight the need for a more careful consideration of the initial thermal condition of planets in evolutionary models to properly interpret the radii measurements of exoplanets.
Sources
- JWST Reveals CH$_4$, CO$_2$, and H$_2$O in a Metal-rich Miscible Atmosphere on a Two-Earth-Radius Exoplanet
- Characterizing the bolometric-photoevaporative transition in young sub-Neptunes with radiation-hydrodynamic simulations
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