• Chinese Optics Letters
  • Vol. 16, Issue 9, 091001 (2018)
Xi He1、2, Cheng Liu1、*, and Jianqiang Zhu1
Author Affiliations
  • 1Shanghai Institute of Optics and Fine Mechanics, Chinese Academy of Sciences, Shanghai 201800, China
  • 2University of Chinese Academy of Sciences, Beijing 100049, China
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    DOI: 10.3788/COL201816.091001 Cite this Article Set citation alerts
    Xi He, Cheng Liu, Jianqiang Zhu. On-line beam diagnostics based on single-shot beam splitting phase retrieval[J]. Chinese Optics Letters, 2018, 16(9): 091001 Copy Citation Text show less
    Schematic diagram of single-shot beam splitting phase retrieval.
    Fig. 1. Schematic diagram of single-shot beam splitting phase retrieval.
    Experimental setup of single-shot beam splitting phase retrieval.
    Fig. 2. Experimental setup of single-shot beam splitting phase retrieval.
    5×5 orders of transmission functions of the Dammann grating: (a) the transmitting modulus and (b) the transmitting phase.
    Fig. 3. 5×5 orders of transmission functions of the Dammann grating: (a) the transmitting modulus and (b) the transmitting phase.
    (a) The transmitting modulus and (b) the transmitting phase of the 5×5 orders of transmission functions of the weakly scattering plate at a wavelength of 632.8 nm; (c) the transmitting modulus and (d) the transmitting phase of the 5×5 orders of transmission functions of the weakly scattering plate at a wavelength of 1053 nm.
    Fig. 4. (a) The transmitting modulus and (b) the transmitting phase of the 5×5 orders of transmission functions of the weakly scattering plate at a wavelength of 632.8 nm; (c) the transmitting modulus and (d) the transmitting phase of the 5×5 orders of transmission functions of the weakly scattering plate at a wavelength of 1053 nm.
    (a1) The recorded diffraction pattern array at a wavelength 1053 nm; (a2) the recorded diffraction pattern array at a wavelength 632 nm; (b1) the reconstructed amplitude and (b2) phase of the light field incident on the grating at a wavelength of 1053 nm by the beam splitting phase retrieval algorithm; (c1) the reconstructed amplitude and (c2) phase of the light field incident on the grating at a wavelength of 1053 nm by the PIE algorithm; (d1) the reconstructed amplitude and (d2) phase of the light field incident on the grating at a wavelength of 632.8 nm by the beam splitting phase retrieval algorithm; (e1) the reconstructed amplitude and (e2) phase of the light field incident on the grating at a wavelength of 632.8 nm by the PIE algorithm.
    Fig. 5. (a1) The recorded diffraction pattern array at a wavelength 1053 nm; (a2) the recorded diffraction pattern array at a wavelength 632 nm; (b1) the reconstructed amplitude and (b2) phase of the light field incident on the grating at a wavelength of 1053 nm by the beam splitting phase retrieval algorithm; (c1) the reconstructed amplitude and (c2) phase of the light field incident on the grating at a wavelength of 1053 nm by the PIE algorithm; (d1) the reconstructed amplitude and (d2) phase of the light field incident on the grating at a wavelength of 632.8 nm by the beam splitting phase retrieval algorithm; (e1) the reconstructed amplitude and (e2) phase of the light field incident on the grating at a wavelength of 632.8 nm by the PIE algorithm.
    (a) Reconstructed amplitude and (b) phase of the incident beam at the aperture plane at a wavelength of 632 nm by the beam splitting phase retrieval algorithm; (c) reconstructed amplitude and (d) phase of the incident beam at the aperture plane at a wavelength of 1053 nm by the beam splitting phase retrieval algorithm.
    Fig. 6. (a) Reconstructed amplitude and (b) phase of the incident beam at the aperture plane at a wavelength of 632 nm by the beam splitting phase retrieval algorithm; (c) reconstructed amplitude and (d) phase of the incident beam at the aperture plane at a wavelength of 1053 nm by the beam splitting phase retrieval algorithm.
    (a), (b) The reconstructed amplitude of USAF 1951 resolution target and its amplification of a dashed red box at a wavelength of 1053 nm in log scale; (c), (d) the reconstructed amplitude of USAF 1951 resolution target and its amplification of a dashed red box at a wavelength of 632.8 nm in log scale; (e) the curve of error changed with iteration times in log scale at wavelengths of 632.8 and 1053 nm.
    Fig. 7. (a), (b) The reconstructed amplitude of USAF 1951 resolution target and its amplification of a dashed red box at a wavelength of 1053 nm in log scale; (c), (d) the reconstructed amplitude of USAF 1951 resolution target and its amplification of a dashed red box at a wavelength of 632.8 nm in log scale; (e) the curve of error changed with iteration times in log scale at wavelengths of 632.8 and 1053 nm.
    Xi He, Cheng Liu, Jianqiang Zhu. On-line beam diagnostics based on single-shot beam splitting phase retrieval[J]. Chinese Optics Letters, 2018, 16(9): 091001
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