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    RISE: robust iterative surface extension for sub-nanometer X-ray mirror fabrication

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    Author
    Wang, T. cc
    Huang, L.
    Choi, H.
    Vescovi, M.
    Kuhne, D.
    Zhu, Y.
    Pullen, W.C.
    Ke, X.
    Kim, D.W.
    Kemao, Q.
    Tayabaly, K.
    Bouet, N.
    Idir, M.
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    Affiliation
    James C. Wyant College of Optical Sciences, University of Arizona
    Large Binocular Telescope Observatory, Univ. of Arizona
    Department of Astronomy and Steward Observatory, Univ. of Arizona
    Issue Date
    2021
    
    Metadata
    Show full item record
    Publisher
    The Optical Society
    Citation
    Wang, T., Huang, L., Choi, H., Vescovi, M., Kuhne, D., Zhu, Y., Pullen, W. C., Ke, X., Kim, D. W., Kemao, Q., Tayabaly, K., Bouet, N., & Idir, M. (2021). RISE: robust iterative surface extension for sub-nanometer X-ray mirror fabrication. Optics Express, 29(10), 15114–15132.
    Journal
    Optics Express
    Rights
    Copyright © 2021 Optical Society of America under the terms of the OSA Open Access Publishing Agreement.
    Collection Information
    This item from the UA Faculty Publications collection is made available by the University of Arizona with support from the University of Arizona Libraries. If you have questions, please contact us at repository@u.library.arizona.edu.
    Abstract
    Precision optics have been widely required in many advanced technological applications. X-ray mirrors, as an example, serve as the key optical components at synchrotron radiation and free electron laser facilities. They are rectangular silicon or glass substrates where a rectangular Clear Aperture (CA) needs to be polished to sub-nanometer Root Mean Squared (RMS) to keep the imaging capability of the incoming X-ray wavefront at the diffraction limit. The convolutional polishing model requires a CA to be extended with extra data, from which the dwell time is calculated via deconvolution. However, since deconvolution is very sensitive to boundary errors and noise, the existing surface extension methods can hardly fulfill the sub-nanometer requirement. On one hand, the figure errors in a CA were improperly modeled during the extension, leading to continuity issues along the boundary. On the other hand, uncorrectable high-frequency errors and noise were also extended. In this study, we propose a novel Robust Iterative Surface Extension (RISE) method that resolves these problems with a data fitting strategy. RISE models the figure errors in a CA with orthogonal polynomials and ensures that only correctable errors are fit and extended. Combined with boundary conditions, an iterative refinement of dwell time is then proposed to compensate the errors brought by the extension and deconvolution, which drastically reduces the estimated figure error residuals in a CA while the increase of total dwell time is negligible. To our best knowledge, RISE is the first data fitting-based surface extension method and is the first to optimize dwell time based on iterative extension. An experimental verification of RISE is given by fabricating two elliptic cylinders (10 mm × 80 mm CAs) starting from a sphere with a radius of curvature around 173 m using ion beam figuring. The figure errors in the two CAs greatly improved from 204.96 nm RMS and 190.28 nm RMS to 0.62 nm RMS and 0.71 nm RMS, respectively, which proves that RISE is an effective method for sub-nanometer level X-ray mirror fabrication. © 2021 Optical Society of America under the terms of the OSA Open Access Publishing Agreement
    Note
    Open access journal
    ISSN
    1094-4087
    PubMed ID
    33985218
    DOI
    10.1364/OE.419490
    Version
    Final published version
    ae974a485f413a2113503eed53cd6c53
    10.1364/OE.419490
    Scopus Count
    Collections
    UA Faculty Publications

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