Sparse scanning Hartmann wavefront sensor

被引:1
|
作者
Xu H. [1 ]
Wu J. [1 ]
机构
[1] Biophotonics Laboratory, University of Michigan – Shanghai Jiao Tong University Joint Institute, Shanghai Jiao Tong University, 800 Dongchuan Road, Shanghai, Minhang District
基金
中国国家自然科学基金;
关键词
Compressed sensing; Dynamic range; Extended aperture; Optical measurement; Spatial resolution; Wavefront reconstruction;
D O I
10.1016/j.optcom.2022.129148
中图分类号
学科分类号
摘要
We propose a sparse scanning Hartmann wavefront sensor (SS-HWFS), which decouples the dynamic range and spatial resolution that used to be traded off in a conventional HWFS by removing its arrayed architecture. In addition, the SS-HWFS applies the compressed sensing (CS) reconstruction and is able to restore the wavefront with a sparsely-chosen acquisition. In the SS-HWFS, a collimated beam as the reference is incident on the sample, which is then sparsely scanned over by a pinhole. The wavefront slopes are measured by tracking the diffraction spots recorded by an imaging sensor behind the pinhole. The wavefront is then reconstructed by assuming sparsity in the Zernike domain, which is frequently used for aberration analysis. Compared with traditional Hartmann wavefront sensors (HWFS), the SS-HWFS could achieve high spatial resolution, extensive dynamic range, extended aperture, and compressed acquisition simultaneously, which is a great benefit for the non-null testing of static optical components. Our sparse scanning wavefront measurement scheme is applicable not only for the HWFS but also for the Shack–Hartmann wavefront sensor (SHWFS). Wavefront measurement of a free-form lens is performed to demonstrate the capability of our proposed method. © 2022 Elsevier B.V.
引用
收藏
相关论文
共 50 条
  • [41] Wavefront characterization with a miniaturized Shack-Hartmann sensor
    Universitaet Erlangen-Nuernberg, Erlangen, Germany
    Optik (Stuttgart), 4 (151-156):
  • [42] Wavefront characterization with a miniaturized Shack-Hartmann sensor
    Du, C
    Zurl, K
    Schwider, J
    OPTIK, 1996, 101 (04): : 151 - 156
  • [43] The Shack-Hartmann Wavefront Sensor for the Rubin Observatory
    Ballesta, Jerome
    Tison, Guillaume
    Meyer, Rafael
    Sebag, Jacques
    Thomas, Sandrine
    ADVANCES IN OPTICAL AND MECHANICAL TECHNOLOGIES FOR TELESCOPES AND INSTRUMENTATION IV, 2020, 11451
  • [44] Shack-Hartmann wavefront sensor for optical metrology
    Qi, B
    Chen, HB
    OPTICS FOR THE QUALITY OF LIFE, PTS 1 AND 2, 2003, 4829 : 910 - 911
  • [45] Hartmann wavefront sensor based on spherical reference wave
    Wei, Wenju
    Rao, Xuejun
    Huang, Linhai
    Zhong, Libo
    FIFTH SYMPOSIUM ON NOVEL OPTOELECTRONIC DETECTION TECHNOLOGY AND APPLICATION, 2019, 11023
  • [46] CUMULATIVE WAVEFRONT RECONSTRUCTOR FOR THE SHACK-HARTMANN SENSOR
    Zhariy, Mariya
    Neubauer, Andreas
    Rosensteiner, Matthias
    Ramlau, Ronny
    INVERSE PROBLEMS AND IMAGING, 2011, 5 (04) : 893 - 913
  • [47] Hartmann wavefront sensor is sensitive to ℷ/15,500
    不详
    LASER FOCUS WORLD, 2007, 43 (09): : 13 - 13
  • [48] Wavefront reconstruction with the adaptive Shack-Hartmann sensor
    Seifert, L
    Tiziani, HJ
    Osten, W
    OPTICS COMMUNICATIONS, 2005, 245 (1-6) : 255 - 269
  • [49] Fast Hartmann-Shack Wavefront Sensor for the Periphery
    Jaeken, B.
    Artal, P.
    INVESTIGATIVE OPHTHALMOLOGY & VISUAL SCIENCE, 2010, 51 (13)
  • [50] Measurement of wavefront aberrations of human eyes with Shack-Hartmann wavefront sensor
    Cheng S.-Y.
    Cao Z.-L.
    Hu L.-F.
    Mu Q.-Q.
    Li P.-F.
    Xuan L.
    Guangxue Jingmi Gongcheng/Optics and Precision Engineering, 2010, 18 (05): : 1060 - 1067