Acta Optica Sinica, Volume. 43, Issue 5, 0522001(2023)

Design of Visible Broadband Computational Imaging System with Single-Layer Diffractive Element

Yiang Wang1, Yang Hu2、**, Mingxu Piao1、*, bo Zhang1, Zhe Wang1, Chengran Zhang1, and Dechao Ma1
Author Affiliations
  • 1School of Opto-Electronic Engineering, Changchun University of Science and Technology, Changchun 130022, Jilin, China
  • 2Luoyang Institute of Electro-Optical Equipment of Aviation Industry Corporation of China, Ltd., Luoyang 471000, Henan, China
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    References(30)

    [1] Lin H, Xu Z Q, Cao G Y et al. Diffraction-limited imaging with monolayer 2D material-based ultrathin flat lenses[J]. Light: Science & Applications, 9, 137(2020).

    [2] Gao X D, Cui Q F, Zheng H Q et al. A thermalization design of deep ultraviolet optical system with wide temperature range[J]. Acta Optica Sinica, 40, 1722001(2020).

    [3] Robert K, Elias S, David F et al. Ultra-thin 3D lensless fiber endoscopy using diffractive optical elements and deep neural networks[J]. Light: Advanced Manufacturing, 2, 415-424(2021).

    [4] Wang Q, Piao M X, Meng Y T et al. Design of infrared dual-band common path annular aperture ultrathin imaging system[J]. Infrared and Laser Engineering, 50, 190-198(2021).

    [5] Bajt S, Prasciolu M, Fleckenstein H et al. X-ray focusing with efficient high-NA multilayer Laue lenses[J]. Light: Science & Applications, 7, 17162(2018).

    [6] Sun Y L, Li J B, Cai X et al. Design of diffractive optical system conformal to farings (invited)[J]. Acta Photonica Sinica, 50, 1022001(2021).

    [7] Cheng D W, Wang Q W, Liu Y et al. Design and manufacture AR head-mounted displays: a review and outlook[J]. Light: Advanced Manufacturing, 2, 350-369(2021).

    [8] Wood A, Lee M S L, Cassette S. Infrared hybrid optics with high broadband efficiency[J]. Proceedings of SPIE, 5874, 58740G(2005).

    [9] Ma T, Shen Y B, Yang G G. Improving diffraction efficiency of DOE in wide waveband application by multilayer micro-structure[J]. Infrared and Laser Engineering, 37, 119-123(2008).

    [10] Fan C J, Zhao Y H, Ying C F et al. Multilayer diffraction element with wide field of view and high diffractive efficiency[J]. Chinese Journal of Lasers, 39, 0516001(2012).

    [11] Piao M X, Cui Q F, Zhang B. Effect of ambient temperature and substrate material selection on diffraction efficiency for diffractive optical elements[J]. Optik, 166, 189-198(2018).

    [12] Zhao L D, Cui Q F, Mao S et al. Effect on diffraction efficiency of diffractive optics with consideration of surface roughness[J]. Acta Photonica Sinica, 47, 0822002(2018).

    [13] Zhang B, Cui Q F, Piao M X. Effect of substrate material selection on polychromatic integral diffraction efficiency for multilayer diffractive optics in oblique incident situation[J]. Optics Communications, 415, 156-163(2018).

    [14] Pei X D, Cui Q F, Leng J K. Effect of incident angle on diffraction efficiency of a two-layer diffractive optical element[J]. Acta Optica Sinica, 29, 120-125(2009).

    [15] Piao M X, Cui Q F, Zhu H et al. Diffraction efficiency change of multilayer diffractive optics with environmental temperature[J]. Journal of Optics, 16, 035707(2014).

    [16] Zheng H Q, Cui Q F, Hu Y et al. Indirect imaging method of Ritchey-Chretien optical system with large field of view[J]. Acta Optica Sinica, 41, 0522002(2021).

    [17] Weng J W, Ouyang H Y, Yang C P. Single pixel imaging based on fringe projection with amplitude spatial modulation[J]. Acta Optica Sinica, 41, 1511003(2021).

    [18] Li J Y, Feng W X, Liu F et al. Design of airborne multi-scale wide-field-of-view and high-resolution imaging system[J]. Acta Optica Sinica, 41, 0208002(2021).

    [19] Peng Y F, Fu Q, Amata H et al. Computational imaging using lightweight diffractive-refractive optics[J]. Optics Express, 23, 31393-31407(2015).

    [20] Hu Y, Cui Q F, Sun L et al. Optical-digital joint design of a dual-waveband infrared refractive-diffractive system[J]. Acta Optica Sinica, 40, 1422002(2020).

    [21] Gonzalez R C, Woods R E[M]. Digital imagine processing. Ruan Q H, Ruan Y Z, Transl, 15-28(2017).

    [22] Hu Y. Research on wide waveband optical system for diffractive computational imaging system[D], 22-26(2021).

    [23] Wang Y H, Li S F, Zhang J et al. Study on the calculation accuracy of dispersion formula[J]. Physics and Engineering, 26, 44-48(2016).

    [24] Hu Y, Cui Q F, Zhao L D et al. PSF model for diffractive optical elements with improved imaging performance in dual-waveband infrared systems[J]. Optics Express, 26, 26845-26857(2018).

    [25] Zhou H P. Principle of CCD image sensor[J]. China New Technologies and Products, 28-29(2009).

    [26] Sun H Y. The measurement of CCD chip's quantum efficiency and uniformity parameters[D], 6-7(2014).

    [28] Cui G M, Feng H J, Xu Z H et al. A modified Richardson-Lucy algorithm for single image with adaptive reference maps[J]. Optics & Laser Technology, 58, 100-109(2014).

    [29] Moorthy A K, Bovik A C. A two-step framework for constructing blind image quality indices[J]. IEEE Signal Processing Letters, 17, 513-516(2010).

    [30] Zeng Y L, Lan J H, Ran B et al. Restoration of motion-blurred image based on border deformation detection: a traffic sign restoration model[J]. PLoS One, 10, e0120885(2015).

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    Yiang Wang, Yang Hu, Mingxu Piao, bo Zhang, Zhe Wang, Chengran Zhang, Dechao Ma. Design of Visible Broadband Computational Imaging System with Single-Layer Diffractive Element[J]. Acta Optica Sinica, 2023, 43(5): 0522001

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    Paper Information

    Category: Optical Design and Fabrication

    Received: Sep. 6, 2022

    Accepted: Oct. 14, 2022

    Published Online: Feb. 27, 2023

    The Author Email: Hu Yang (huyangcclg@163.com), Piao Mingxu (piaomingxu123@126.com)

    DOI:10.3788/AOS221683

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