• Laser & Optoelectronics Progress
  • Vol. 58, Issue 9, 0900002 (2021)
Yuhang Shen1, Zhengji Ni1、2、*, Yuanshen Huang1、2, Banglian Xu1、2, Bei Guo1, and Dinglu Wang1
Author Affiliations
  • 1School of Optical-Electrical and Computer Engineering, University of Shanghai for Science and Technology, Shanghai 200093, China
  • 2Shanghai Institute of Optical Instruments, Shanghai 200093, China
  • show less
    DOI: 10.3788/LOP202158.0900002 Cite this Article Set citation alerts
    Yuhang Shen, Zhengji Ni, Yuanshen Huang, Banglian Xu, Bei Guo, Dinglu Wang. Research Progress of Concentric Imaging Spectrometer with Convex Grating[J]. Laser & Optoelectronics Progress, 2021, 58(9): 0900002 Copy Citation Text show less
    References

    [1] Li Q C, Jiang Y J[M]. Principle of spectroscopic instrument, 311-323(1999).

    [2] Diner D J, Bruegge C J, Martonchik J V et al. MISR: a multiangle imaging spectroradiometer for geophysical and climatological research from Eos[J]. IEEE Transactions on Geoscience and Remote Sensing, 27, 200-214(1989).

    [3] Fisher J, Antoniades J A, Rollins C et al. Hyperspectral imaging sensor for the coastal environment[J]. Proceedings of SPIE, 3482, 179-186(1998).

    [4] Davis C, Bowles J, Leathers R et al. Ocean PHILLS hyperspectral imager: design, characterization, and calibration[J]. Optics Express, 10, 210-221(2002).

    [5] Zheng Y Q, Yu B X. Overview of spectrum-dividing technologies in imaging spectrometers[J]. Journal of Remote Sensing, 6, 75-80(2002).

    [6] Zuo B J, Zhang A H. Optical system design of the imaging spectrometer[J]. Optical Technology, 28, 187-188, 190(2002).

    [7] Xue Q S. Optical system design of large relative-aperture and wide field of view spaceborne imaging spectrometer[J]. Chinese Journal of Lasers, 41, 0316003(2014).

    [8] Yu F, Wen Q, Lei H J et al. Research progress in key technologies on near infrared microspectrometer[J]. Laser & Optoelectronics Progress, 55, 100003(2018).

    [9] Huang L K, Wen Q, Wen Z Y et al. Micro-ultraviolet spectrometer analysis system[J]. Laser & Optoelectronics Progress, 57, 053003(2020).

    [10] Rowlands N, Neville R A, Powell I P. Short-wave infrared (SWIR) imaging spectrometer for remote sensing[J]. Proceedings of SPIE, 2269, 237-247(1994).

    [11] Li T H, Yang H H, Zhao Y P. Imaging spectrometer remote sensing: current status and future[J]. Remote Sensing Technology and Application, 12, 55-59(1997).

    [12] Zheng Y Q, Wang H, Wang Y F. Selection and design of optical systems for spaceborne hyperspectral imagers[J]. Optics and Precision Engineering, 17, 2629-2637(2009).

    [13] Wang Y M, Lang J W, Wang J Y. Status and prospect of space-borne hyperspectral imaging technology[J]. Laser & Optoelectronics Progress, 50, 010008(2013).

    [14] Offner A. Unit power imaging catoptrics anastigmat[P].

    [15] Mertz L. Concentric spectrographs[J]. Applied Optics, 16, 3122-3124(1977).

    [16] Kwo D, Lawrence G, Chrisp M. Design of a grating spectrometer from a 1:1 Offner mirror system[J]. Proceedings of SPIE, 818, 275-281(1987).

    [17] Ji Y Q, Shen W M. Design and manufacture of Offner convex grating hyper-spectral imager[J]. Infrared and Laser Engineering, 39, 285-287(2010).

    [18] Zhu J C, Jin Y M, Huang X J et al. Design and optimization of broadband convex blazed grating[J]. Infrared and Laser Engineering, 46, 1120003(2017).

    [19] Liu Y N, Sun D X, Hu X N et al. Development of visible and short-wave infrared hyperspectral imager onboard GF-5 satellite[J]. Journal of Remote Sensing, 24, 333-344(2020).

    [20] Zheng Y Q. Design of compact Offner spectral imaging system[J]. Optics and Precision Engineering, 13, 650-657(2005).

    [21] Liu W. Design and analysis of structure of compact Offner spectral imaging system[J]. Chinese Journal of Optics and Applied Optics, 3, 157-163(2010).

    [22] Chrisp M P. Convex diffracting grating imaging spectrometer[P].

    [23] Huang Y S, Ni Z J. Research of the concentric three-reflection optical system[J]. Optical Instruments, 27, 42-46(2005).

    [24] Huang Y S, Ni Z J, Zhuang S L. Research of the concentric optical system of grating spectrometers[J]. Optical Instruments, 27, 38-42(2005).

    [25] Prieto-Blanco X, Montero-Orille C, Couce B et al. Analytical design of an Offner imaging spectrometer[J]. Optics Express, 14, 9156-9168(2006).

    [26] Huang Y S, Chen N S, Zhang D W et al. Design method for Offner imaging spectrometer composed of convex grating[J]. Chinese Journal of Scientific Instrument, 29, 1236-1239(2008).

    [27] Tong Y J, Wu G, Zhou Q et al. Design method of Offner-type imaging spectrometer[J]. Acta Optica Sinica, 30, 1148-1152(2010).

    [28] Liu G H, Wu G, Ling Q et al. Modelling of Offner imaging spectrometers and aberration analysis[J]. Acta Optica Sinica, 31, 0322001(2011).

    [29] Liu Y J, Cui J C et al. Design and application of imaging spectrometer with convex grating[J]. Optics and Precision Engineering, 20, 52-57(2012).

    [30] Han S, Huang Y S, Li B C et al. Theoretical analysis and research about high image quality Offner imaging spectrometer[J]. Acta Photonica Sinica, 43, 0430001(2014).

    [31] Pei Z R, Huang Y S, Zhang D W et al. Research of wavelength range and spectral resolution for Offner imaging spectrometer[J]. Acta Photonica Sinica, 43, 0730004(2014).

    [32] Pei Z R, Huang Y S, Ni Z J. Research of resolution for Offner two-mirror three-reflection imaging spectrometer[J]. Optical Instruments, 36, 147-151(2014).

    [33] Ji Y Q, Li J X, Zhou J K et al. Analytical design and implementation of an imaging spectrometer[J]. Applied Optics, 54, 517-526(2015).

    [34] Lee C M, Cable M L, Hook S J et al. An introduction to the NASA Hyperspectral InfraRed Imager (HyspIRI) mission and preparatory activities[J]. Remote Sensing of Environment, 167, 6-19(2015).

    [35] Zheng Z Z, Yang Z, Qin Y T et al. Structure analysis and experiment of an Offner-type short-wave infrared imaging spectrometer[J]. Laser & Optoelectronics Progress, 57, 053001(2020).

    [36] Lucke R L. Out-of-plane dispersion in an Offner spectrometer[J]. Optical Engineering, 46, 073004(2007).

    [37] Prieto-Blanco X, Montero-Orille C, González-Núñez H et al. Imaging with classical spherical diffraction gratings: the quadrature configuration[J]. Journal of the Optical Society of America A, 26, 2400-2409(2009).

    [38] Prieto-Blanco X, Montero-Orille C, González-Nuñez H et al. The Offner imaging spectrometer in quadrature[J]. Optics Express, 18, 12756-12769(2010).

    [39] Prieto-Blanco X, González-Nuñez H, de la Fuente R. Off-plane anastigmatic imaging in Offner spectrometers[J]. Journal of the Optical Society of America A, 28, 2332-2339(2011).

    [40] González-Núñez H, Prieto-Blanco X, de la Fuente R. Pupil aberrations in Offner spectrometers[J]. Journal of the Optical Society of America A, 29, 442-449(2012).

    [41] Gao Z Y, Fang W, Song B Q et al. Design of off-plane Offner spectrometer with high spectral resolution[J]. Acta Optica Sinica, 36, 0211002(2016).

    [42] Pan Q, Chen X H, Zhou J K et al. Manufacture of the compact conical diffraction Offner hyperspectral imaging spectrometer[J]. Applied Optics, 58, 7298-7304(2019).

    [43] Wynne C G. Optical imaging systems[P].

    [44] Lobb D R. Theory of concentric designs for grating spectrometers[J]. Applied Optics, 33, 2648-2658(1994).

    [45] Prieto-Blanco X, de la Fuente R. Compact Offner-Wynne imaging spectrometers[J]. Optics Communications, 328, 143-150(2014).

    [46] Zhang Y, Ding X Z, Yang B et al. The design of coaxial Offner thermal infrared spectrometer with WFOV[J]. Infrared Technology, 38, 537-541(2016).

    [47] Zhu Y J, Yin D Y, Chen Y H et al. Design of hyperspectral resolution ultraviolet Offner imaging spectrometer system[J]. Acta Optica Sinica, 38, 0222001(2018).

    [48] Zhu J C, Shen W M. Compact anastigmatic long-slit spectrometer[J]. Journal of Infrared and Millimeter Waves, 38, 542-548(2019).

    [49] Zhu J C, Shen W M. Analytical design of a thermal ultra-compact concentric catadioptric imaging spectrometer[J]. Optics Express, 27, 31094-31109(2019).

    [50] Lin J, Wu S, Yu L. Broadband astigmatism-free Offner imaging spectrometer with high resolution[J]. Applied Optics, 59, 1110-1116(2020).

    [51] Lobb D R. Design of a spectrometer system for measurements on Earth atmosphere from geostationary orbit[J]. Proceedings of SPIE, 5249, 191-202(2004).

    [52] Grange R, Milliard B, McLean R et al. Three-dimensional spectroscopy with a fiber-fed NUV spectrograph[J]. Proceedings of SPIE, 5898, 589812(2005).

    [53] Whyte C, Leigh R J, Lobb D et al. Assessment of the performance of a compact concentric spectrometer system for atmospheric differential optical absorption spectroscopy[J]. Atmospheric Measurement Techniques, 2, 789-800(2009).

    [54] Julian J P, Didona K M, Milner D P et al. Multi-channel, multi-spectrum imaging spectrometer: US7518722[P/OL]. https://patents.just ia.com/patent/7518722

    [55] Liu X X, Ji Y Q, He H C et al. Analysis and design of Littrow-Offner spectroscopic system[J]. Acta Optica Sinica, 33, 0422009(2013).

    [56] Shen Y H, Ni Z J, Huang Y S et al. Analytical design of a high-performing +1st order diffraction convex grating imaging spectrometer[J]. Applied Optics, 59, 3760-3765(2020).

    [57] Reimers J, Schiesser E M, Thompson K P et al. Comparison of freeform imaging spectrometer design forms using spectral full-field displays[C], FM3B.3(2015).

    [58] Reimers J, Rolland J P. Spectral full-field displays for spectrometers[C], ITh3A.5(2014).

    [59] Yang T, Zhu J, Wu X F et al. Direct design of freeform surfaces and freeform imaging systems with a point-by-point three-dimensional construction-iteration method[J]. Optics Express, 23, 10233-10246(2015).

    [60] Peschel T, Damm C, Beier M et al. Design of an imaging spectrometer for Earth observation using freeform mirrors[J]. Proceedings of SPIE, 10562, 1056237(2016).

    [61] Pang Z H, Fan X W, Ma Z et al. Free-form optical elements corrected aberrations of optical system[J]. Acta Optica Sinica, 36, 0522001(2016).

    [62] Reimers J, Bauer A, Thompson K P et al. Freeform spectrometer enabling increased compactness[J]. Science & Applications, 6(2017).

    [63] Reimers J, Thompson K P, Troutman J et al. Increased compactness of an imaging spectrometer enabled by freeform surfaces[C], JW2C.5(2017).

    [64] Wei L D, Feng L, Zhou J S et al. Optical design of Offner-Chrisp imaging spectrometer with freeform surfaces[J]. Proceedings of SPIE, 10021, 100211P(2016).

    [65] Marchi A Z, Borguet B. Freeform grating spectrometers for hyperspectral space applications: status of ESA programs[C], JTh2B.5(2017).

    [66] Yang T, Cheng D W, Wang Y T. Freeform imaging spectrometer design using a point-by-point design method[J]. Applied Optics, 57, 4718-4727(2018).

    [67] Feng L, Wei L D, Nie Y F et al. Design of a compact spectrometer with large field of view based on freeform surface[J]. Optics Communications, 444, 81-86(2019).

    [68] 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).

    Yuhang Shen, Zhengji Ni, Yuanshen Huang, Banglian Xu, Bei Guo, Dinglu Wang. Research Progress of Concentric Imaging Spectrometer with Convex Grating[J]. Laser & Optoelectronics Progress, 2021, 58(9): 0900002
    Download Citation