The CARMENES search for exoplanets around M dwarfs. The impact of rotation and magnetic fields on the radial velocity jitter in cool stars
H. L. Ruh, M. Zechmeister, A. Reiners, E. Nagel, Y. Shan, C., Cifuentes, S. V. Jeffers, L. Tal-Or, V. J. S. B\'ejar, P. J. Amado, J. A., Caballero, A. Quirrenbach, I. Ribas, J. Aceituno, A. P. Hatzes, Th. Henning,, A. Kaminski, D. Montes, J. C. Morales, P. Sch\"ofer

TL;DR
This study investigates the intrinsic RV jitter in M dwarfs caused by stellar activity, rotation, and magnetic fields, establishing a jitter floor and its dependence on stellar properties to improve exoplanet detection precision.
Contribution
It provides the first comprehensive analysis of RV jitter in M dwarfs, linking stellar rotation and magnetic fields to jitter levels, and establishes a jitter floor for these stars.
Findings
Median RV jitter is 3.1 m/s in the sample.
Stars with rotation velocities below 1 km/s have a jitter floor of 2 m/s.
Magnetic field strength and filling factors influence RV jitter levels.
Abstract
Radial velocity (RV) jitter represents an intrinsic limitation on the precision of Doppler searches for exoplanets that can originate from both instrumental and astrophysical sources. We aim to determine the RV jitter floor in M dwarfs and investigate the stellar properties that lead to RV jitter induced by stellar activity. We determined the RV jitter in 239 M dwarfs from the CARMENES survey that are predominantly of mid to late spectral type and solar metallicity. We also investigated the correlation between stellar rotation and magnetic fields with RV jitter. The median jitter in the CARMENES sample is 3.1 m/s, and it is 2.3 m/s for stars with an upper limit of 2 km/s on their projected rotation velocities. We provide a relation between the stellar equatorial rotation velocity and RV jitter in M dwarfs based on a subsample of 129 well-characterized CARMENES stars. RV jitter induced…
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