English

Testing the Metal of Late-Type Kepler Planet Hosts with Iron-Clad Methods

Earth and Planetary Astrophysics 2015-06-15 v1 Solar and Stellar Astrophysics

Abstract

It has been shown that F, G, and early K dwarf hosts of Neptune-sized planets are not preferentially metal-rich. However, it is less clear whether the same holds for late K and M dwarf planet hosts. We report metallicities of Kepler targets and candidate transiting planet hosts with effective temperatures below 4500 K. We use new metallicity calibrations to determine [Fe/H] from visible and near-infrared spectra. We find that the metallicity distribution of late K and M dwarfs monitored by Kepler is consistent with that of the solar neighborhood. Further, we show that hosts of Earth- to Neptune-sized planets have metallicities consistent with those lacking detected planets and rule out a previously claimed 0.2 dex offset between the two distributions at 6sigma confidence. We also demonstrate that the metallicities of late K and M dwarfs hosting multiple detected planets are consistent with those lacking detected planets. Our results indicate that multiple terrestrial and Neptune-sized planets can form around late K and M dwarfs with metallicities as low as 0.25 of the solar value. The presence of Neptune-sized planets orbiting such low-metallicity M dwarfs suggests that accreting planets collect most or all of the solids from the disk and that the potential cores of giant planets can readily form around M dwarfs. The paucity of giant planets around M dwarfs compared to solar-type stars must be due to relatively rapid disk evaporation or a slower rate of core accretion, rather than insufficient solids to form a core.

Keywords

Cite

@article{arxiv.1304.7269,
  title  = {Testing the Metal of Late-Type Kepler Planet Hosts with Iron-Clad Methods},
  author = {Andrew W. Mann and Eric Gaidos and Adam Kraus and Eric J. Hilton},
  journal= {arXiv preprint arXiv:1304.7269},
  year   = {2015}
}

Comments

9 pages, 5 figures. Accepted to ApJ