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    Current Population Statistics Do Not Favor Photoevaporation over Core-powered Mass Loss as the Dominant Cause of the Exoplanet Radius Gap

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    Loyd_2020_ApJ_890_23.pdf
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    Author
    Loyd, R. O. Parke cc
    Shkolnik, Evgenya L.
    Schneider, Adam C. cc
    Richey-Yowell, Tyler
    Barman, Travis S. cc
    Peacock, Sarah cc
    Pagano, Isabella
    Affiliation
    Univ Arizona, Lunar & Planetary Lab
    Issue Date
    2020-02-07
    
    Metadata
    Show full item record
    Publisher
    IOP PUBLISHING LTD
    Citation
    R. O. Parke Loyd et al 2020 ApJ 890 23
    Journal
    ASTROPHYSICAL JOURNAL
    Rights
    Copyright © 2020. The American Astronomical Society. All rights reserved.
    Collection Information
    This item from the UA Faculty Publications collection is made available by the University of Arizona with support from the University of Arizona Libraries. If you have questions, please contact us at repository@u.library.arizona.edu.
    Abstract
    We search for evidence of the cause of the exoplanet radius gap, i.e., the dearth of planets with radii near 1.8 R-circle plus. If the cause were photoevaporation, the radius gap should trend with proxies for the early-life high-energy emission of the planet-hosting stars. If, alternatively, the cause were core-powered mass loss, no such trends should exist. Critically, spurious trends between the radius gap and stellar properties arise from an underlying correlation with instellation. After accounting for this underlying correlation, we find that no trends remain between the radius gap and stellar mass or present-day stellar activity as measured by near-UV emission. We dismiss the nondetection of a radius gap trend with near-UV emission because present-day near-UV emission is unlikely to trace early-life high-energy emission, but we provide a catalog of Galaxy Evolution Explorer near-UV and far-UV emission measurements for general use. We interpret the nondetection of a radius gap trend with stellar mass by simulating photoevaporation with mass-dependent evolution of stellar high-energy emission. The simulation produces an undetectable trend between the radius gap and stellar mass under realistic sources of error. We conclude that no evidence, from this analysis or others in the literature, currently exists that clearly favors either photoevaporation or core-powered mass loss as the primary cause of the exoplanet radius gap. However, repeating this analysis once the body of well-characterized <4 R-circle plus planets has roughly doubled could confirm or rule out photoevaporation.
    ISSN
    0004-637X
    DOI
    10.3847/1538-4357/ab6605
    Version
    Final published version
    ae974a485f413a2113503eed53cd6c53
    10.3847/1538-4357/ab6605
    Scopus Count
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    UA Faculty Publications

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