Observable Signatures of Planet Accretion in Red Giant Stars I: Rapid Rotation and Light Element Replenishment
arXiv:1208.1775 · doi:10.1088/0004-637X/757/2/109
Abstract
The orbital angular momentum of a close-orbiting giant planet can be sufficiently large that, if transferred to the envelope of the host star during the red giant branch (RGB) evolution, it can spin-up the star's rotation to unusually large speeds. This spin-up mechanism is one possible explanation for the rapid rotators detected among the population of generally slow-rotating red giant stars. These rapid rotators thus comprise a unique stellar sample suitable for searching for signatures of planet accretion in the form of unusual stellar abundances due to the dissemination of the accreted planet in the stellar envelope. In this study, we look for signatures of replenishment in the Li abundances and (to a lesser extent) 12C/13C, which are both normally lowered during RGB evolution. Accurate abundances were measured from high signal-to-noise echelle spectra for samples of both slow and rapid rotator red giant stars. We find that the rapid rotators are on average enriched in lithium compared to the slow rotators, but both groups of stars have identical distributions of 12C/13C within our measurement precision. Both of these abundance results are consistent with the accretion of planets of only a few Jupiter masses. We also explore alternative scenarios for understanding the most Li-rich stars in our sample---particularly Li regeneration during various stages of stellar evolution. Finally, we find that our stellar samples show non-standard abundances even at early RGB stages, suggesting that initial protostellar Li abundances and 12C/13C may be more variable than originally thought.
Accepted for publication in the Astrophysical Journal. 29 pages in emulateapj format, including 16 figures and 12 tables. Tables 4 and 8 are provided in their entirety as plain text ancillary files (and will also be available in the electronic edition of ApJ)
References in corpus (16)
- Modules for Experiments in Stellar Astrophysics (MESA)
- A grid of MARCS model atmospheres for late-type stars I. Methods and general properties
- New Grids of ATLAS9 Model Atmospheres
- A new code for automatic determination of equivalent widths: Automatic Routine for line Equivalent widths in stellar Spectra (ARES)
- Thermohaline mixing: A physical mechanism governing the photospheric composition of low-mass giants
- Precise radial velocities of giant stars. III. Spectroscopic stellar parameters
- Deep Mixing of He-3: Reconciling Big Bang and Stellar Nucleosynthesis
- Two Suns in The Sky: Stellar Multiplicity in Exoplanet Systems
- Rotational mixing in low-mass stars II. Self-consistent models of Pop II RGB stars
- Can Extra Mixing in RGB and AGB Stars Be Attributed to Magnetic Mechanisms?
- Confirmation of the Planet Hypothesis for the Long-period Radial Velocity Variations of Beta Geminorum
- Magnetic Mixing in Red Giant and Asymptotic Giant Branch Stars
- The Role of Planet Accretion in Creating the Next Generation of Red Giant Rapid Rotators
- Discovery of a planet around the K giant star 4 UMa
- The Super Lithium-Rich Red Giant Rapid Rotator G0928+73.2600: A Case for Planet Accretion?
- The extra-mixing efficiency in very low metallicity RGB stars
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- The Penn State - Torun Centre for Astronomy Planet Search stars. II. Lithium abundance analysis of the Red Giant Clump sample
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- The Puzzling Li-rich Red Giant Associated with NGC 6819
- Kepler rapidly rotating giant stars
- Rotational and Radial Velocities of 1.3-2.2 M_Sun Red Giants in Open Clusters
- On the Nature of Rapidly Rotating Single Evolved Stars