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Published July 10, 2017 | Submitted + Published
Journal Article Open

Implementing focal-plane phase masks optimized for real telescope apertures with SLM-based digital adaptive coronagraphy

Abstract

Direct imaging of exoplanets or circumstellar disk material requires extreme contrast at the 10^(−6) to 10^(−12) levels at < 100 mas angular separation from the star. Focal-plane mask (FPM) coronagraphic imaging has played a key role in this field, taking advantage of progress in Adaptive Optics on ground-based 8 + m class telescopes. However, large telescope entrance pupils usually consist of complex, sometimes segmented, non-ideal apertures, which include a central obstruction for the secondary mirror and its support structure. In practice, this negatively impacts wavefront quality and coronagraphic performance, in terms of achievable contrast and inner working angle. Recent theoretical works on structured darkness have shown that solutions for FPM phase profiles, optimized for non-ideal apertures, can be numerically derived. Here we present and discuss a first experimental validation of this concept, using reflective liquid crystal spatial light modulators as adaptive FPM coronagraphs.

Additional Information

© 2017 Optical Society of America. Received 4 May 2017; revised 28 Jun 2017; accepted 28 Jun 2017; published 6 Jul 2017. JK and XL, as well as the entire DAC project, are funded through the Swiss National Science Foundation (SNSF) Ambizione grant #PZ00P2_154800. The authors would like to thank Prof. H. M. Schmid and Prof. M. R. Meyer for the research support since the DAC project started, as well as Dr. S. Daemgen, Dr. S. Quanz and Dr. A. Glauser for the motivating discussions and helpful contributions. We also thank Holoeye GmbH support staff for the timely and thorough answers to our questions on the SLM hardware.

Attached Files

Published - oe-25-14-16686.pdf

Submitted - 1707.03256.pdf

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August 19, 2023
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