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Chakrabarti_2022_ApJL_928_L17.pdf
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Department of Astronomy, Steward Observatory, University of ArizonaIssue Date
2022
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American Astronomical SocietyCitation
Chakrabarti, S., Stevens, D. J., Wright, J., Rafikov, R. R., Chang, P., Beatty, T., & Huber, D. (2022). Eclipse Timing the Milky Way’s Gravitational Potential. Astrophysical Journal Letters.Journal
Astrophysical Journal LettersRights
© 2022. The Author(s). Published by the American Astronomical Society. Original content from this work may be used under the terms of the Creative Commons Attribution 4.0 licence.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 show that a small but measurable shift in the eclipse midpoint time of eclipsing binary (EBs) stars of 0.1 s over a decade baseline can be used to directly measure the Galactic acceleration of stars in the Milky Way at kiloparsec distances from the Sun. We consider contributions to the period drift rate from dynamical mechanisms other than the Galaxy's gravitational field and show that the Galactic acceleration can be reliably measured using a sample of Kepler EBs with orbital and stellar parameters from the literature. The contribution from tidal decay we estimate here is an upper limit assuming the stars are not tidally synchronized. We find there are about 200 detached EBs that have estimated timing precision better than 0.5 s, and for which other dynamical effects are subdominant to the Galactic signal. We illustrate the method with a prototypical, precisely timed EB using an archival Kepler light curve and a modern synthetic HST light curve (which provides a decade baseline). This novel method establishes a realistic possibility to constrain dark matter substructure and the Galactic potential using eclipse timing to measure Galactic accelerations, along with other emerging new methods, including pulsar timing and extreme-precision radial velocity observations. This acceleration signal grows quadratically with time. Therefore, given baselines established in the near future for distant EBs, we can expect to measure the period drift in the future with space missions like JWST and the Roman Space Telescope. © 2022. The Author(s). Published by the American Astronomical Society.Note
Open access journalISSN
2041-8205Version
Final published versionae974a485f413a2113503eed53cd6c53
10.3847/2041-8213/ac5c43
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Except where otherwise noted, this item's license is described as © 2022. The Author(s). Published by the American Astronomical Society. Original content from this work may be used under the terms of the Creative Commons Attribution 4.0 licence.

