Published December 10, 2024 | Version Published
Journal Article Open

Two Novel Hot Jupiter Formation Pathways: How White Dwarf Kicks Shape the Hot Jupiter Population

  • 1. ROR icon Vanderbilt University
  • 2. ROR icon Tufts University
  • 3. ROR icon University of California, Los Angeles
  • 4. ROR icon The Ohio State University
  • 5. ROR icon California Institute of Technology

Abstract

The origin of Hot Jupiters (HJs) is disputed between a variety of in situ and ex situ formation scenarios. One of the early proposed ex situ scenarios was the Eccentric Kozai–Lidov (EKL) mechanism combined with tidal circularization, which can produce HJs with the aid of a stellar or planetary companion. However, observations have revealed a lack of stellar companions to HJs, which challenges the importance of the binary star-driven-EKL-plus-tides scenario. In this work, we explore so far unaccounted-for stellar evolution effects on HJ formation, in particular the effect of white dwarf (WD) formation. Gaia observations have revealed that WDs often undergo a kick during formation, which can alter a binary's orbital configuration or even unbind it. Based on this WD kick, in this Letter, we propose and explore two novel HJ formation pathways: (1) HJs that are presently orbiting single stars but were initially formed in a binary that was later unbound by a WD kick; (2) binaries that survive the WD kick can trigger enhanced EKL oscillations and lead to second-generation HJ formation. We demonstrate that the majority of seemingly single HJs could have formed in binary star systems. As such, HJ formation in binaries via the EKL mechanism could be one of the dominant HJ formation pathways, and our results highlight that unaccounted-for stellar evolution effects, like WD formation, can obscure the actual origin of observed exoplanet populations.

Copyright and License

© 2024. 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. Any further distribution of this work must maintain attribution to the author(s) and the title of the work, journal citation and DOI.

Acknowledgement

We thank the reviewer for helpful comments and suggestions. A.P.S. acknowledges support from NASA grant 80NSSC24M0022. S.N. acknowledges partial support from NASA XRP grant 80NSSC23K0262 and thanks Howard and Astrid Preston for their generous support. N.R.H. acknowledges generous support by the Ohio State University's Department of Astronomy and Center for Cosmology and AstroParticle Physics via the Summer Undergraduate Research Program in Astrophysics (SURP). This work used computational and storage services associated with the Hoffman2 Shared Cluster provided by UCLA Office of Advanced Research Computing's Research Technology Group, and the resources provided by the Vanderbilt Advanced Computing Center for Research and Education (ACCRE).

Software References

Matplotlib (J. D. Hunter 2007), NumPy (C. R. Harris et al. 2020), SciPy (P. Virtanen et al. 2020), Rebound (H. Rein & S. F. Liu 2012), Reboundx (D. Tamayo et al. 2020).

Files

Stephan_2024_ApJL_977_L11.pdf

Files (1.4 MB)

Name Size
md5:6f99a98c260042ad5e87fd892e8a9473
1.4 MB Preview Download

Additional details

Related works

Is new version of
Discussion Paper: arXiv:2408.13307 (arXiv)

Funding

National Aeronautics and Space Administration
80NSSC24M0022
National Aeronautics and Space Administration
80NSSC23K0262
The Ohio State University
Summer Undergraduate Research Program in Astrophysics (SURP)

Dates

Accepted
2024-11-04
Accepted
Available
2024-12-03
Published

Caltech Custom Metadata

Publication Status
Published