A High-Resolution MIR Echelle Grating Spectrometer with a Three-Mirror Anastigmatic System

被引:4
|
作者
Wang, Qingyu [1 ,2 ,3 ]
Shen, Honghai [1 ,2 ]
Liu, Weiqi [1 ]
Dai, Pengzhang [1 ,2 ,3 ]
机构
[1] Chinese Acad Sci, Changchun Inst Opt Fine Mech & Phys, Changchun 130033, Peoples R China
[2] Univ Chinese Acad Sci, Beijing 100039, Peoples R China
[3] Chinese Acad Sci, Key Lab Airborne Opt Imaging & Measurement, Changchun 130033, Peoples R China
来源
APPLIED SCIENCES-BASEL | 2022年 / 12卷 / 16期
关键词
high resolution; silicon immersion grating; echelle spectrometer; concave grating; optical design; DISPERSION;
D O I
10.3390/app12168013
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
With the emergence of high-performance infrared detectors and the latest progress in grating manufacturing technology, high-resolution and high-sensitivity infrared spectrometers provide new methods for application to many fields, including astronomy and remote sensing detection. Spectral detection has attracted considerable attention due to its advantages of noncontact and stability. To obtain the detailed features of the missile's tail flame spectrum, traditional plane reflection gratings are used as the main dispersive element; however, the instrument's volume will increase with increasing resolution, which is not conducive to remote sensing detection from airborne platforms. Such spectrometers cannot meet high-resolution spectroscopy requirements. To address this problem, this paper proposes an immersion echelle spectrometer combined with a three-mirror astigmatism optical system. High resolution and compact size were achieved. In this paper, a small high-resolution infrared echelle spectrometer optical system was created by combining an off-axis three-mirror anti-astigmatism system, a Littrow structure, and a concave grating Wadsworth imaging device. The optical system operated in the 3.7-4.8 mu m band; the echelle grating worked under quasi-Littrow conditions, while the concave grating was used for auxiliary dispersion to separate overlapping orders. The resolution of the optical system in the entire working band was 23,000-45,000. The optical plane size of the spectrometer was around 360 mm x 165 mm. The results show that the Mid-IR echelle spectrometer achieved high spectral resolution, better than 0.25 cm(-1), meeting missile tail flame detection requirements. This device has the potential for real-time long-range target detection when warheads are destroyed. While this study focuses on the mid-wave infrared band, its approach can also be extended to other infrared bands.
引用
收藏
页数:14
相关论文
共 50 条
  • [31] Off-Axis Three-Mirror Anastigmatic System Alignment and Application Based on Principal Component Analysis
    Guo Jikai
    Wang Zhile
    Lu Min
    ACTA OPTICA SINICA, 2019, 39 (03)
  • [32] Wavefront error testing of off-axis three-mirror anastigmatic system using phase diversity technology
    Cheng, Qiang
    Yan, Feng
    Xue, Donglin
    Zheng, Ligong
    Zhang, Xuejun
    Zhongguo Jiguang/Chinese Journal of Lasers, 2012, 39 (10):
  • [33] HIGH-RESOLUTION OBSERVATIONS OF COOL STARS WITH THE ESO COUDE ECHELLE SPECTROMETER
    PALLAVICINI, R
    PAKULL, M
    LECTURE NOTES IN PHYSICS, 1984, 193 : 108 - 111
  • [34] A new kind of three anastigmatic mirror system
    Jun, C
    Weng, ZC
    Jiang, HL
    Wang, YT
    Cong, XJ
    Optical Design and Testing II, Pts 1 and 2, 2005, 5638 : 272 - 275
  • [35] High-resolution astronomical spectrograph design method with a single echelle grating
    Kukushkin, Dmitrii E.
    Sazonenko, Dmitrii A.
    Valyavin, Gennady G.
    Bakholdin, Alexey
    APPLIED OPTICS, 2023, 62 (12) : 3004 - 3015
  • [36] Echelle Grating Spectroscopic Technology for High-Resolution and Broadband Spectral Measurement
    Zhang, Yinxin
    Li, Wanzhuo
    Duan, Wenhao
    Huang, Zhanhua
    Yang, Huaidong
    APPLIED SCIENCES-BASEL, 2022, 12 (21):
  • [37] Algorithm for calculating anastigmatic three-mirror telescopes. II. Spherical primary mirror case
    Terebizh, V. Yu
    EXPERIMENTAL ASTRONOMY, 2021, 51 (02) : 383 - 389
  • [38] Radiation fluctuations in a three-mirror system: II. Radiation noise in a three-mirror system
    A. A. Kurbatov
    Optics and Spectroscopy, 2009, 106 : 424 - 429
  • [39] Radiation fluctuations in a three-mirror system: II. Radiation noise in a three-mirror system
    Kurbatov, A. A.
    OPTICS AND SPECTROSCOPY, 2009, 106 (03) : 424 - 429
  • [40] Algorithm for calculating anastigmatic three-mirror telescopes. II. Spherical primary mirror case
    V. Yu. Terebizh
    Experimental Astronomy, 2021, 51 : 383 - 389