Skip to main navigation Skip to search Skip to main content

Leveraging Space-based Data from the Nearest Solar-type Star to Better Understand Stellar Activity Signatures in Radial Velocity Data

  • Tamar Ervin
  • , Samuel Halverson
  • , Abigail Burrows
  • , Neil Murphy
  • , Arpita Roy
  • , Raphaelle D. Haywood
  • , Federica Rescigno
  • , Chad F. Bender
  • , Andrea S. J. Lin
  • , Jennifer Burt
  • , Suvrath Mahadevan

Research output: Contribution to journalArticlepeer-review

109 Downloads (Pure)

Abstract

Stellar variability is a key obstacle in reaching the sensitivity required to recover Earth-like exoplanetary signals using the radial velocity (RV) detection method. To explore activity signatures in Sun-like stars, we present SolAster, a publicly distributed analysis pipeline10 that allows for comparison of space-based measurements with ground-based disk-integrated RVs. Using high-spatial-resolution Dopplergrams, magnetograms, and continuum filtergrams from the Helioseismic and Magnetic Imager aboard the Solar Dynamics Observatory (SDO), we estimate "Sun-as-a-star" disk-integrated RVs due to rotationally modulated flux imbalances and convective blueshift suppression, as well as other observables such as unsigned magnetic flux. Comparing these measurements with ground-based RVs from the NEID instrument, which observes the Sun daily using an automated solar telescope, we find a strong relationship between magnetic activity indicators and RV variation, supporting efforts to examine unsigned magnetic flux as a proxy for stellar activity in slowly rotating stars. Detrending against measured unsigned magnetic flux allows us to improve the NEID RV measurements by ∼20% (∼50 cm s−1 in a quadrature sum), yielding an rms scatter of ∼60 cm s−1 over five months. We also explore correlations between individual and averaged spectral line shapes in the NEID spectra and SDO-derived magnetic activity indicators, motivating future studies of these observables. Finally, applying SolAster to archival planetary transits of Venus and Mercury, we demonstrate the ability to recover small amplitude (<50 cm s−1) RV variations in the SDO data by directly measuring the Rossiter–McLaughlin signals.
Original languageEnglish
Article number272
Number of pages16
JournalThe Astronomical Journal
Volume163
Issue number6
Early online date17 May 2022
DOIs
Publication statusPublished - Jun 2022

Fingerprint

Dive into the research topics of 'Leveraging Space-based Data from the Nearest Solar-type Star to Better Understand Stellar Activity Signatures in Radial Velocity Data'. Together they form a unique fingerprint.

Cite this