• Acta Optica Sinica
  • Vol. 41, Issue 7, 0722002 (2021)
Lingying Chang1, Qiang Zhang1、*, and Yuehong Qiu2
Author Affiliations
  • 1School of Electronic Engineering, Xi′an University of Posts & Telecommunications, Xi′an, Shaanxi 710121, China;
  • 2Xi′an Institute of Optics and Precision Mechanics, Chinese Academy of Sciences, Xi′an, Shaanxi 710119, China
  • show less
    DOI: 10.3788/AOS202141.0722002 Cite this Article Set citation alerts
    Lingying Chang, Qiang Zhang, Yuehong Qiu. Design of Optical System for Broadband and Integrated AOTF Imaging Spectrometer[J]. Acta Optica Sinica, 2021, 41(7): 0722002 Copy Citation Text show less
    References

    [1] Wang J Y, Shu R, Liu Y N et al[M]. Introduction to imaging spectroscopy technology(2011).

    [2] Liu S S. Acousto-optic tunable filter and the application of imaging spectrometer[J]. Infrared, 25, 12-17(2004).

    [3] Sheng Z F, Zhang C G, Qiu Z L et al. Spectroscopic imaging of cutaneous squamous cell carcinoma based on acousto-optic filtering[J]. Spectroscopy and Spectral Analysis, 40, 34-40(2020).

    [4] Yuan J W, Zhang C G, Wang H et al. Rapid microscopic spectral imaging of lung cancer tissue based on acousto-optic tunable filter[J]. Chinese Journal of Lasers, 45, 0407003(2018).

    [5] Yang Y Y. Measure and analysis of algorithm optimization for near infrared spectrum of dairy product composition content[D]. Harbin: Harbin University of Science and Technology, 1-3(2018).

    [6] Korablev O, Fedorova A, Bertaux J L et al. SPICAV IR acousto-optic spectrometer experiment on Venus Express[J]. Planetary and Space Science, 65, 38-57(2012).

    [7] Chang L Y, Zhao B C, Qiu Y H et al. Optical design of imaging spectrometer based on acousto-optic tunable filter[J]. Acta Optica Sinica, 30, 3021-3026(2010).

    [8] Dai S W, Wu J, Sun H X et al. Chang'E-3 lunar rover's scientific payloads[J]. Chinese Journal of Space Science, 34, 332-340(2014).

    [9] Zhao Z, An Z Y, Wang J S et al. Medium infrared optical system optimized design of AOTF spectrum camera for target tracking and identifying[J]. Acta Photonica Sinica, 43, 0722003(2014).

    [10] Korablev O, Montmessin F, Trokhimovskiy A et al. The atmospheric chemistry suite (ACS) of three spectrometers for the ExoMars 2016 trace gas orbiter[J]. Space Science Reviews, 214, 62(2018).

    [11] Zhu H B, Guan S. Design of imaging spectrometer based on AOTF[J]. Electro-Optic Technology Application, 32, 20-23,70(2017).

    [12] He Z P, Zhao H T, Li J N. Characteristics of staring imaging spectrometer and its application prospect in asteroid exploration[J]. Aerospace China, 20, 14-21(2019).

    [13] Zhou J Q, Cui W N, Zhang T et al. Adaptive band selection technique based on spectral measurement data[J]. Laser & Optoelectronics Progress, 56, 232501(2019).

    [14] Roger C W, Sylvestre M, Fernando R P. The SuperCam remote sensing instrument suite for the Mars 2020 rover: a preview[J]. Spectroscopy, 32, 50-55(2017).

    [15] Georgiev G, Glenar D A, Hillman J J. Spectral characterization of acousto-optic filters used in imaging spectroscopy[J]. Applied Optics, 41, 209-217(2002).

    [16] Liu X M. Research on the reflective optical system of imaging spectrometer with wide-field and high-resolution[D]. Changchun: University of Chinese Academy of Sciences, 49-73(2013).

    [17] Chen Y, Wang Y M. Optical design of prism spectrometer system with a small incident angle[J]. Acta Optica Sinica, 33, 0922002(2013).

    [18] Xue Q S, Huang Y, Lin G Y. Optical system design of wide-angle and high-resolution spaceborne imaging spectrometer[J]. Acta Optica Sinica, 31, 0822001(2011).

    [19] Ji Y B. Research on optical system analysis and design of infrared bispectrum Fourier transform imaging spectrometer[D]. Beijing: University of Chinese Academy of Sciences, 33-48(2018).

    [20] Yuan X C[M]. Optical design(1983).

    [21] Sivanayagam A, Findlay D. High resolution noncollinear acoustooptic filters with variable passband characteristics: design[J]. Applied Optics, 23, 4601(1984).

    [22] Cao C, Liao Z Y, Bai Y et al. Initial configuration design of off-axis reflective optical system based on vector aberration theory[J]. Acta Physica Sinica, 68, 134201(2019).

    [23] Chen Y, Wang Y M. Design and distortion characteristics analysis of the large-image-field off-axis three-mirror telescope[J]. Acta Optica Sinica, 33, 0222003(2013).

    [24] Wang Z J[M]. Theoretical basis of optical design, 158-200(1985).

    [25] Chang L Y, Zhao B C, Qiu Y H et al. Optimal scheme of AOTF imaging spectrometer optical system[J]. Journal of Applied Optics, 33, 5-8(2012).

    [26] Li X Y, Ni D W, Yang M Y et al. Design of large field of view space camera optical system based on freeform surfaces[J]. Acta Photonica Sinica, 47, 0922003(2018).

    [27] Zhao Y C, He X, Zhang K et al. Optical design of miniaturized and large field of view off-axis optical system based on freeform surface[J]. Infrared and Laser Engineering, 47, 1218001(2018).

    [28] Cao C, Liao S, Liao Z Y et al. Design of off-axis reflective optical system with large field-of-view based on freeform surfaces[J]. Acta Optica Sinica, 40, 0808001(2020).

    [29] Cao C, Liao S, Liao Z Y et al. Design of cooled freeform-surface off-axis reflective optical system[J]. Acta Optica Sinica, 39, 1122001(2019).

    [30] Fuerschbach K, Davis G E, Thompson K P et al. Assembly of a freeform off-axis optical system employing three φ-polynomial Zernike mirrors[J]. Optics Letters, 39, 2896-2899(2014).

    [31] Ye J F, Chen L, Li X H et al. Review of optical freeform surface representation technique and its application[J]. Optical Engineering, 56, 110901(2017).

    [32] Shen Z X, Yu J, Song Z Z et al. Customized design and efficient fabrication of two freeform aluminum mirrors by single point diamond turning technique[J]. Applied Optics, 58, 2269-2276(2019).

    Lingying Chang, Qiang Zhang, Yuehong Qiu. Design of Optical System for Broadband and Integrated AOTF Imaging Spectrometer[J]. Acta Optica Sinica, 2021, 41(7): 0722002
    Download Citation