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Evidence that Core-Powered Mass-Loss Dominates Over Photoevaporation in Shaping the Kepler Radius Valley
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abstract
The dearth of planets with sizes around 1.8 $\mathrm{R_\oplus}$ is a key demographic feature discovered by the $Kepler$ mission. Two theories have emerged as potential explanations for this valley: photoevaporation and core-powered mass-loss. However, Rogers et al. (2021) shows that differentiating between the two theories is possible using the three-dimensional parameter space of planet radius, incident flux, and stellar mass. We use homogeneously-derived stellar and planetary parameters to measure the $Kepler$ exoplanet radius gap in this three-dimensional space. We compute the slope of the gap as a function of incident flux at constant stellar mass ($\alpha$ $\equiv$ $\left(\partial \log R_{\mathrm{gap}} / \partial \log S \right)_{M_\star}$) and the slope of the gap as a function of stellar mass at constant incident flux ($\beta$ $\equiv$ $\left(\partial \log R_{\mathrm{gap}} / \partial \log M_\star \right)_{S}$) and find $\alpha$ = 0.069$^{+0.019}_{-0.023}$ and $\beta$ = $-$0.046$^{+0.125}_{-0.117}$. Given that Rogers et al. (2021) shows that core-powered mass-loss predicts $\alpha$ $\approx$ 0.08 and $\beta$ $\approx$ 0.00 while photoevaporation predicts $\alpha$ $\approx$ 0.12 and $\beta$ $\approx$ --0.17, our measurements are more consistent with core-powered mass-loss than photoevaporation. However, we caution that different gap-determination methods can produce systematic offsets in both $\alpha$ and $\beta$; therefore, we motivate a comprehensive re-analysis of $Kepler$ light curves with modern, updated priors on eccentricity and mean stellar density to improve both the accuracy and precision of planet radii and subsequent measurements of the gap.
Forward citations
Cited by 2 Pith papers
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A primordial radius valley as a consequence of planet formation
A pebble-accretion-based planet formation model produces a primordial radius valley without mass loss, because only cores reaching the pebble isolation mass accrete significant atmospheres.
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An Analysis of the Radius Gap in a Sample of Kepler, K2 and TESS exoplanets orbiting M Dwarf Stars
The radius gap for M-dwarf planets is nearly flat in orbital period (slope +0.01), supporting pebble accretion and migration over photoevaporation as the main sculpting mechanism.
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