Three-dimensional structure of a sunspot light bridge
T. Felipe, M. Collados, E. Khomenko, C. Kuckein, A. Asensio Ramos, H., Balthasar, T. Berkefeld, C. Denker, A. Feller, M. Franz, A. Hofmann, C., Kiess, A. Lagg, H. Nicklas, D. Orozco Su\'arez, A. Pastor Yabar, R. Rezaei,, R. Schlichenmaier, D. Schmidt, W. Schmidt, M. Sigwarth

TL;DR
This study investigates the three-dimensional magnetic and thermodynamical structure of a sunspot light bridge during decay, revealing a convective flow that influences magnetic field configurations and contributes to sunspot evolution.
Contribution
It provides the first detailed 3D analysis of a sunspot light bridge's magnetic and thermodynamic structure during decay, combining spectropolarimetric inversions and imaging data.
Findings
Light bridge has a canopy magnetic field with lower strength.
Convective flow bends magnetic field lines and causes reversals.
Field lines become vertical and strong as in the umbra.
Abstract
Active regions are the most prominent manifestations of solar magnetic fields; their generation and dissipation are fundamental problems in solar physics. Light bridges are commonly present during sunspot decay, but a comprehensive picture of their role in the removal of photospheric magnetic field is still missing. We study the three dimensional configuration of a sunspot and in particular its light bridge during one of the last stages of its decay. We present the magnetic and thermodynamical stratification inferred from full Stokes inversions of the photospheric Si I 10827 \AA\ and Ca I 10839 \AA\ lines obtained with the GREGOR Infrared Spectrograph of the GREGOR telescope at Observatorio del Teide, Tenerife, Spain. The analysis is complemented by a study of continuum images covering the disk passage of the active region, which are provided by the Helioseismic and Magnetic Imager on…
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