The death of Vulcan: NEID reveals the planet candidate orbiting HD 26965 is stellar activity
arXiv:2404.17494 · doi:10.3847/1538-3881/ad34d5
Abstract
We revisit the long-studied radial velocity (RV) target HD26965 using recent observations from the NASA-NSF 'NEID' precision Doppler facility. Leveraging a suite of classical activity indicators, combined with line-by-line RV analyses, we demonstrate that the claimed 45-day signal previously identified as a planet candidate is most likely an activity-induced signal. Correlating the bulk (spectrally-averaged) RV with canonical line activity indicators confirms a multi-day 'lag' between the observed activity indicator time series and the measured RV. When accounting for this lag, we show that much of the observed RV signal can be removed by a linear detrending of the data. Investigating activity at the line-by-line level, we find a depth-dependent correlation between individual line RVs and the bulk RVs, further indicative of periodic suppression of convective blueshift causing the observed RV variability, rather than an orbiting planet. We conclude that the combined evidence of the activity correlations and depth dependence is consistent with a radial velocity signature dominated by a rotationally-modulated activity signal at a period of 42 days. We hypothesize that this activity signature is due to a combination of spots and convective blueshift suppression. The tools applied in our analysis are broadly applicable to other stars, and could help paint a more comprehensive picture of the manifestations of stellar activity in future Doppler RV surveys.
25 pages, 13 figures. Accepted in AJ
References in corpus (19)
- The NumPy array: a structure for efficient numerical computation
- The Gaia mission
- Contributions to the Nearby Stars (NStars) Project: Spectroscopy of Stars Earlier than M0 within 40 parsecs: The Southern Sample
- ESPRESSO@VLT -- On-sky performance and first results
- Three years of Sun-as-a-star radial-velocity observations on the approach to solar minimum
- Python Leap Second Management and Implementation of Precise Barycentric Correction (barycorrpy)
- Three Years of HARPS-N High-Resolution Spectroscopy and Precise Radial Velocity Data for the Sun
- Measuring precise radial velocities on individual spectral lines : II. Dependance of stellar activity signal on line depth
- A comprehensive radial velocity error budget for next generation Doppler spectrometers
- RASSINE: Interactive tool for normalising stellar spectra I. Description and performance of the code
- The EXPRES Stellar Signals Project II. State of the Field in Disentangling Photospheric Velocities
- Measuring precise radial velocities on individual spectral lines. III. Dependence of stellar activity signal on line formation temperature
- Toward Extremely Precise Radial Velocities: II. A Tool For Using Multivariate Gaussian Processes to Model Stellar Activity
- Observing the Sun as a star: Design and early results from the NEID solar feed
- Target Prioritization and Observing Strategies for the NEID Earth Twin Survey
- Doppler Constraints on Planetary Companions to Nearby Sun-like Stars: An Archival Radial Velocity Survey of Southern Targets for Proposed NASA Direct Imaging Missions
- A combined spectroscopic and photometric stellar activity study of Epsilon Eridani
- Long-term stellar activity variations and their effect on radial-velocity measurements
- Into the Depths: a new activity metric for high-precision radial velocity measurements based on line depth variations
Cited by in corpus (4)
- Quiet Please: Detrending Radial Velocity Variations from Stellar Activity with a Physically Motivated Spot Model
- The NEID Earth Twin Survey. II. Dynamical Masses in Seven High-acceleration Star Systems
- Searching for Low-Mass Exoplanets Amid Stellar Variability with a Fixed Effects Linear Model of Line-by-Line Shape Changes
- SPORES-HWO. II. Companion Mass Limits and Updated Planet Properties for 120 Future Exoplanet Imaging Targets from 35 yr of Precise Doppler Monitoring