Published July 20, 2019 | Version Published + Submitted
Journal Article Open

The Mass of the White Dwarf Companion in the Self-Lensing Binary KOI-3278: Einstein vs. Newton

  • 1. ROR icon Harvard-Smithsonian Center for Astrophysics
  • 2. ROR icon Infrared Processing and Analysis Center
  • 3. ROR icon University of Washington
  • 4. ROR icon Massachusetts Institute of Technology
  • 5. ROR icon Goddard Space Flight Center
  • 6. ROR icon Yale University
  • 7. ROR icon Columbia University
  • 8. ROR icon Technical University of Denmark
  • 9. ROR icon California Institute of Technology
  • 10. ROR icon NASA Exoplanet Science Institute
  • 11. ROR icon University of California, Berkeley
  • 12. ROR icon University of Southern Queensland

Abstract

KOI-3278 is a self-lensing stellar binary consisting of a white dwarf secondary orbiting a Sun-like primary star. Kruse & Agol noticed small periodic brightenings every 88.18 days in the Keplerphotometry and interpreted these as the result of microlensing by a white dwarf with about 63% of the mass of the Sun. We obtained two sets of spectra for the primary that allowed us to derive three sets of spectroscopic estimates for its effective temperature, surface gravity, and metallicity for the first time. We used these values to update the Kruse & Agol Einsteinian microlensing model, resulting in a revised mass for the white dwarf of 0.539^(+0.022)_(-0.020) M⊙. The spectra also allowed us to determine radial velocities and derive orbital solutions, with good agreement between the two independent data sets. An independent Newtonian dynamical MCMC model of the combined velocities yielded a mass for the white dwarf of 0.5122^(+0.0057)_(-0.0058) M⊙. The nominal uncertainty for the Newtonian mass is about four times better than for the Einsteinian, ±1.1% versus ±4.1%, and the difference between the two mass determinations is 5.2%. We then present a joint Einsteinian microlensing and Newtonian radial velocity model for KOI-3278, which yielded a mass for the white dwarf of 0.5250^(+0.0082)_(-0.0089) M⊙. This joint model does not rely on any white dwarf evolutionary models or assumptions on the white dwarf mass–radius relation. We discuss the benefits of a joint model of self-lensing binaries, and how future studies of these systems can provide insight into the mass–radius relation of white dwarfs.

Additional Information

© 2019 The American Astronomical Society. Received 2019 April 24; revised 2019 May 24; accepted 2019 June 1; published 2019 July 22. We thank George Zhou, Joseph Rodriguez, Allyson Bieryla, Jason Eastman, and Stephanie Douglas for stimulating conversations and guidance. Software: Brewer (Brewer et al. 2016), emcee (Foreman-Mackey et al. 2013), matplotlib (Hunter 2007), numpy (Walt et al. 2011), scipy (Jones et al. 2001), SPC (Buchhave et al. 2012), SpecMatch (Petigura et al. 2017).

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Published - Yahalomi_2019_ApJ_880_33.pdf

Submitted - 1904.11063.pdf

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Eprint ID
95498
Resolver ID
CaltechAUTHORS:20190515-080923158

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Dates

Created
2019-05-16
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Updated
2021-11-16
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