Closed-loop focal plane wavefront control with the SCExAO instrument

Aims. This article describes the implementation of a focal plane based wavefront control loop on the high-contrast imaging instrument SCExAO (Subaru Coronagraphic Extreme Adaptive Optics). The sensor relies on the Fourier analysis of conventional focal-plane images acquired after an asymmetric mask...

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Main Authors: Martinache, Frantz, Jovanovic, Nemanja, Guyon, Olivier
Other Authors: Univ Arizona, Steward Observ
Language:en
Published: EDP SCIENCES S A 2016
Subjects:
Online Access:http://hdl.handle.net/10150/622158
http://arizona.openrepository.com/arizona/handle/10150/622158
id ndltd-arizona.edu-oai-arizona.openrepository.com-10150-622158
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spelling ndltd-arizona.edu-oai-arizona.openrepository.com-10150-6221582017-01-27T03:00:26Z Closed-loop focal plane wavefront control with the SCExAO instrument Martinache, Frantz Jovanovic, Nemanja Guyon, Olivier Univ Arizona, Steward Observ Univ Arizona, Coll Opt Sci instrumentation: adaptive optics methods: data analysis techniques: high angular resolution techniques: interferometric Aims. This article describes the implementation of a focal plane based wavefront control loop on the high-contrast imaging instrument SCExAO (Subaru Coronagraphic Extreme Adaptive Optics). The sensor relies on the Fourier analysis of conventional focal-plane images acquired after an asymmetric mask is introduced in the pupil of the instrument. Methods. This absolute sensor is used here in a closed-loop to compensate for the non-common path errors that normally affects any imaging system relying on an upstream adaptive optics system. This specific implementation was used to control low-order modes corresponding to eight zernike modes (from focus to spherical). Results. This loop was successfully run on-sky at the Subaru Telescope and is used to offset the SCExAO deformable mirror shape used as a zero-point by the high-order wavefront sensor. The paper details the range of errors this wavefront-sensing approach can operate within and explores the impact of saturation of the data and how it can be bypassed, at a cost in performance. Conclusions. Beyond this application, because of its low hardware impact, the asymmetric pupil Fourier wavefront sensor (APF-WFS) can easily be ported in a wide variety of wavefront sensing contexts, for ground-as well space-borne telescopes, and for telescope pupils that can be continuous, segmented or even sparse. The technique is powerful because it measures the wavefront where it really matters, at the level of the science detector. 2016-09-06 Article Closed-loop focal plane wavefront control with the SCExAO instrument 2016, 593:A33 Astronomy & Astrophysics 0004-6361 1432-0746 10.1051/0004-6361/201628496 http://hdl.handle.net/10150/622158 http://arizona.openrepository.com/arizona/handle/10150/622158 Astronomy & Astrophysics en http://www.aanda.org/10.1051/0004-6361/201628496 © ESO, 2016 EDP SCIENCES S A
collection NDLTD
language en
sources NDLTD
topic instrumentation: adaptive optics
methods: data analysis
techniques: high angular resolution
techniques: interferometric
spellingShingle instrumentation: adaptive optics
methods: data analysis
techniques: high angular resolution
techniques: interferometric
Martinache, Frantz
Jovanovic, Nemanja
Guyon, Olivier
Closed-loop focal plane wavefront control with the SCExAO instrument
description Aims. This article describes the implementation of a focal plane based wavefront control loop on the high-contrast imaging instrument SCExAO (Subaru Coronagraphic Extreme Adaptive Optics). The sensor relies on the Fourier analysis of conventional focal-plane images acquired after an asymmetric mask is introduced in the pupil of the instrument. Methods. This absolute sensor is used here in a closed-loop to compensate for the non-common path errors that normally affects any imaging system relying on an upstream adaptive optics system. This specific implementation was used to control low-order modes corresponding to eight zernike modes (from focus to spherical). Results. This loop was successfully run on-sky at the Subaru Telescope and is used to offset the SCExAO deformable mirror shape used as a zero-point by the high-order wavefront sensor. The paper details the range of errors this wavefront-sensing approach can operate within and explores the impact of saturation of the data and how it can be bypassed, at a cost in performance. Conclusions. Beyond this application, because of its low hardware impact, the asymmetric pupil Fourier wavefront sensor (APF-WFS) can easily be ported in a wide variety of wavefront sensing contexts, for ground-as well space-borne telescopes, and for telescope pupils that can be continuous, segmented or even sparse. The technique is powerful because it measures the wavefront where it really matters, at the level of the science detector.
author2 Univ Arizona, Steward Observ
author_facet Univ Arizona, Steward Observ
Martinache, Frantz
Jovanovic, Nemanja
Guyon, Olivier
author Martinache, Frantz
Jovanovic, Nemanja
Guyon, Olivier
author_sort Martinache, Frantz
title Closed-loop focal plane wavefront control with the SCExAO instrument
title_short Closed-loop focal plane wavefront control with the SCExAO instrument
title_full Closed-loop focal plane wavefront control with the SCExAO instrument
title_fullStr Closed-loop focal plane wavefront control with the SCExAO instrument
title_full_unstemmed Closed-loop focal plane wavefront control with the SCExAO instrument
title_sort closed-loop focal plane wavefront control with the scexao instrument
publisher EDP SCIENCES S A
publishDate 2016
url http://hdl.handle.net/10150/622158
http://arizona.openrepository.com/arizona/handle/10150/622158
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AT jovanovicnemanja closedloopfocalplanewavefrontcontrolwiththescexaoinstrument
AT guyonolivier closedloopfocalplanewavefrontcontrolwiththescexaoinstrument
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