English

Determining the impact of post-main-sequence stellar evolution on the transiting giant planet population

Earth and Planetary Astrophysics 2025-11-07 v2 Solar and Stellar Astrophysics

Abstract

The post-main sequence evolution of stars is expected to impact the exoplanets residing on close-in orbits around them. Using photometric data from the TESS Full-Frame-Images we have performed a transit search for exoplanets with post-main sequence hosts to search for the imprints of these impacts on the giant planet population. We detect 130 short period planets and candidates, thirty-three of which are newly discovered candidates, from a sample of 456,941 post-main sequence stars spanning the evolutionary stages from the end of the main sequence to the bottom of the red giant branch. We measure an occurrence rate of 0.28±0.040.28 \pm 0.04% for short period giant planets orbiting post-main sequence stars. We also measure occurrence rates for two stellar sub-populations, measuring values of 0.35±0.050.35 \pm 0.05% for a sub-population representing the earliest stages of post-main sequence evolution and 0.110.05+0.060.11^{+0.06}_{-0.05}% for a sub-population of more evolved stars. We show that the giant planet occurrence rate decreases with increasing stellar evolution stage, with a larger occurrence rate decrease observed for shorter period planets. Our results are clear evidence that the population of short period giant planets is being sculpted by the post-main sequence evolution of the host stars, and we conclude that this is most likely through the destruction of these giant planets through the increased strength of planet-star tidal interactions resulting in the rapid tidal decay of the planets' orbits.

Keywords

Cite

@article{arxiv.2511.02896,
  title  = {Determining the impact of post-main-sequence stellar evolution on the transiting giant planet population},
  author = {Edward M. Bryant and Vincent Van Eylen},
  journal= {arXiv preprint arXiv:2511.02896},
  year   = {2025}
}

Comments

Main text 20 pages, 14 figures. Appendices 4 tables, 1 figure. Accepted for publication in MNRAS. Version2 provided to correct a typo in the abstract