Polarization analysis of the VLTI and GRAVITY
GRAVITY Collaboration, F. Widmann, X. Haubois N. Schuhler, O. Pfuhl,, F. Eisenhauer, S. Gillessen, N. Aimar, A. Amorim, M. Baub\"ock, J. B. Berger,, H. Bonnet, G. Bourdarot, W. Brandner, Y. Cl\'enet, R. Davies, P. T. de Zeeuw,, J. Dexter, A. Drescher, A. Eckart, H. Feuchtgruber

TL;DR
This paper develops a comprehensive polarization model for the VLTI and GRAVITY, enabling precise polarimetric observations and calibration, and demonstrates its effectiveness through observations of a galactic center star.
Contribution
It introduces a full polarization model for VLTI UTs and GRAVITY, along with a calibration Python package, to improve polarimetric measurements and reduce systematic errors.
Findings
Achieved polarization degree accuracy within 0.4%
Constrained polarization angle within 5 degrees
Phase error below 1 degree, corresponding to 10 microarcseconds astrometric error
Abstract
The goal of this work is to characterize the polarization effects of the VLTI and GRAVITY. This is needed to calibrate polarimetric observations with GRAVITY for instrumental effects and to understand the systematic error introduced to the astrometry due to birefringence when observing targets with a significant intrinsic polarization. By combining a model of the VLTI light path and its mirrors and dedicated experimental data, we construct a full polarization model of the VLTI UTs and the GRAVITY instrument. We first characterize all telescopes together to construct a UT calibration model for polarized targets. We then expand the model to include the differential birefringence. With this, we can constrain the systematic errors for highly polarized targets. Together with this paper, we publish a standalone Python package to calibrate the instrumental effects on polarimetric observations.…
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Taxonomy
TopicsAstronomy and Astrophysical Research · Adaptive optics and wavefront sensing · Stellar, planetary, and galactic studies
