English

Constraining Stellar Rotation at the Zero-Age Main Sequence with TESS

Solar and Stellar Astrophysics 2023-11-30 v1

Abstract

The zero-age main sequence (ZAMS) is a critical phase for stellar angular momentum evolution, as stars transition from contraction-dominated spin-up to magnetic wind-dominated spin-down. We present the first robust observational constraints on rotation for FGK stars at 40\approx40 Myr. We have analyzed TESS light curves for 1410 members of five young open clusters with ages between 25-55 Myr: IC 2391, IC 2602, NGC 2451A, NGC 2547, and Collinder 135. In total, we measure 868 rotation periods, including 96 new, high-quality periods for stars around 1 M{M_{\odot}}. This is an increase of ten times the existing literature sample at the ZAMS. We then use the τ2\tau^2 method to compare our data to models for stellar angular momentum evolution. Although the ages derived from these rotation models do not match isochronal ages, we show these observations can clearly discriminate between different models for stellar wind torques. Finally, τ2\tau^2 fits indicate that magnetic braking and/or internal angular momentum transport significantly impact rotational evolution even on the pre-main sequence.

Keywords

Cite

@article{arxiv.2311.17184,
  title  = {Constraining Stellar Rotation at the Zero-Age Main Sequence with TESS},
  author = {S. T. Douglas and P. A. Cargile and S. P. Matt and A. A. Breimann and J. A. Pérez Chávez and C. X. Huang and N. J. Wright and G. Zhou},
  journal= {arXiv preprint arXiv:2311.17184},
  year   = {2023}
}

Comments

20 pages, 11 figures, 4 tables; ApJ Accepted

R2 v1 2026-06-28T13:34:43.610Z