SUPER-EARTH ATMOSPHERES: SELF-CONSISTENT GAS ACCRETION AND RETENTION

Some recently discovered short-period Earth- to Neptune-sized exoplanets (super-Earths) have low observed mean densities that can only be explained by voluminous gaseous atmospheres. Here, we study the conditions allowing the accretion and retention of such atmospheres. We self-consistently couple t...

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Bibliographic Details
Main Authors: Ginzburg, Sivan (Author), Sari, Re'em (Author), Schlichting, Hilke E (Contributor)
Format: Article
Language:English
Published: American Astronomical Society/IOP Publishing, 2018-03-19T18:49:04Z.
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Online Access:Get fulltext
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100 1 0 |a Ginzburg, Sivan  |e author 
100 1 0 |a Schlichting, Hilke E  |e contributor 
700 1 0 |a Sari, Re'em  |e author 
700 1 0 |a Schlichting, Hilke E  |e author 
245 0 0 |a SUPER-EARTH ATMOSPHERES: SELF-CONSISTENT GAS ACCRETION AND RETENTION 
260 |b American Astronomical Society/IOP Publishing,   |c 2018-03-19T18:49:04Z. 
856 |z Get fulltext  |u http://hdl.handle.net/1721.1/114220 
520 |a Some recently discovered short-period Earth- to Neptune-sized exoplanets (super-Earths) have low observed mean densities that can only be explained by voluminous gaseous atmospheres. Here, we study the conditions allowing the accretion and retention of such atmospheres. We self-consistently couple the nebular gas accretion onto rocky cores and the subsequent evolution of gas envelopes following the dispersal of the protoplanetary disk. Specifically, we address mass-loss due to both photo-evaporation and cooling of the planet. We find that planets shed their outer layers (dozens of percent in mass) following the disk's dispersal (even without photo-evaporation), and their atmospheres shrink in a few Myr to a thickness comparable to the radius of the underlying rocky core. At this stage, atmospheres containing less particles than the core (equivalently, lighter than a few percent of the planet's mass) can be blown away by heat coming from the cooling core, while heavier atmospheres cool and contract on a timescale of Gyr at most. By relating the mass-loss timescale to the accretion time, we analytically identify a Goldilocks region in the mass-temperature plane in which low-density super-Earths can be found: planets have to be massive and cold enough to accrete and retain their atmospheres, but not too massive or cold, such that they do not enter runaway accretion and become gas giants (Jupiters). We compare our results to the observed super-Earth population and find that low-density planets are indeed concentrated in the theoretically allowed region. Our analytical and intuitive model can be used to investigate possible super-Earth formation scenarios. 
655 7 |a Article 
773 |t Astrophysical Journal