Zeeman Doppler Imaging of ksi Boo A and B
K. G. Strassmeier, T. A. Carroll, I. V. Ilyin

TL;DR
This study uses high-resolution spectropolarimetric data to create detailed magnetic field maps of both stars in the ksi Boo AB binary, revealing their magnetic topologies and flux densities with improved inversion techniques.
Contribution
It introduces an advanced inversion method with iterative regularization and a three-component magnetic field model, providing more accurate stellar magnetic maps.
Findings
ksi Boo A has a nearly polar negative polarity spot and multiple low-latitude spots.
ksi Boo B shows low-to-mid latitude spots with mixed polarity and no polar magnetic field.
Both stars' magnetic energy is dominated by the radial component, with weaker azimuthal and meridional fields.
Abstract
We present a magnetic-field surface map for both stellar components of the young visual binary ksi Boo AB (A: G8V, B: K5V). Employed are high resolution Stokes-V spectra obtained with the Potsdam Echelle Polarimetric and Spectroscopic Instrument (PEPSI) at the Large Binocular Telescope (LBT). Stokes V line profiles are inverted with our iMAP software and compared to previous inversions. We employed an iterative regularization scheme without the need of a penalty function and incorporated a three-component description of the surface magnetic-field vector. The spectral resolution of our data is 130,000 (0.040-0.055A) and have signal-to-noise ratios (S/N) of up to three thousand per pixel depending on wavelength. A singular-value decomposition (SVD) of a total of 1811 spectral lines is employed for averaging Stokes-V profiles. Our mapping is accompanied by a residual bootstrap error…
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Taxonomy
TopicsStellar, planetary, and galactic studies · Astronomy and Astrophysical Research · Adaptive optics and wavefront sensing
