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arXiv · astro-ph/0512544

Integrated optics for astronomical interferometry - VI. Coupling the light of the VLTI in K band

Abstract

Our objective is to prove that integrated optics (IO) is not only a good concept for astronomical interferometry but also a working technique with high performance. We used the commissioning data obtained with the dedicated K-band integrated optics two-telescope beam combiner which now replaces the fiber coupler MONA in the VLTI/VINCI instrument. We characterize the behaviour of this IO device and compare its properties to other single mode beam combiner like the previously used MONA fiber coupler. The IO combiner provides a high optical throughput, a contrast of 89% with a night-to-night stability of a few percent. Even if a dispersive phase is present, we show that it does not bias the measured Fourier visibility estimate. An upper limit of 0.005 for the cross-talk between linear polarization states has been measured. We take advantage of the intrinsic contrast stability to test a new astronomical prodecure for calibrating diameters of simple stars by simultaneously fitting the instrumental contrast and the apparent stellar diameters. This method reaches an accuracy with diameter errors of the order of previous ones but without the need of an already known calibrator. These results are an important step of integrated optics and paves the road to incoming imaging interferometer projects.

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Jean-Baptiste Le Bouquin, Pierre Labeye, Fabien Malbet, Laurent Jocou, Fatemeh Zabihian, Karine Rousselet-Perraut, Jean-Philippe Berger, Alain Delboulbe, Pierre Kern, Andreas Glindemann, Markus Schoeller. 2005-12-21. Integrated optics for astronomical interferometry - VI. Coupling the light of the VLTI in K band. https://doi.org/10.1051/0004-6361%3A20054258

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