红外与激光工程, 2018, 47 (2): 0220002, 网络出版: 2018-04-26  

偏轴式扫描三光栅单色仪

Off-axis scanning three-grating monochromator
作者单位
1 中国科学院长春光学精密机械与物理研究所, 吉林 长春 130033
2 中国科学院大学, 北京 100049
摘要
为了获得宽波段高分辨率的单色光, 对成像光谱仪进行了波长标定, 设计了一款扫描式三光栅单色仪。光栅扫描系统采用蜗轮蜗杆机构, 针对传统安装方式带来的光栅有效口径损失及杂散光等问题, 创造性地提出了蜗轮蜗杆转台偏轴安装的方法, 通过蜗轮蜗杆转台初始位置的偏移, 有效抑制了扫描过程中光栅实际有效口径的减小和仪器杂散光增加等问题。单色仪光学系统采用水平式C-T结构, 通过三块光栅实现280~2 240 nm的宽波段输出, 保证整个波段内的高衍射效率和光谱分辨率; 并针对蜗轮蜗杆的非线性扫描, 使用多种数学模型对单色仪系统进行了光谱定标。最终的实验和测量证明, 仪器在280~560 nm、560~1120 nm、1 120~2 240 nm三个波段的光谱分辨率分别为0.1、0.2、0.4 nm, 波长重复性分别为 0.094、0.186、0.372 nm, 波长准确度分别为0.096、 0.191、0.382 nm, 达到了设计目标, 满足成像光谱仪波长定标的使用要求。
Abstract
In order to obtain wide-band and high-resolution monochromatic light, the wavelength of the imaging spectrometer was calibrated, and a scanning monochromator was designed. The grating scanning system was driven by worm and worm wheel mechanism, and an off-axis installation method was designed to install the worm gear, thus solving the problem of the traditional installation method, such as the decrease of the effective aperture of the grating, and the increase of the stray light. The monochromator optics system used the horizontal Czerny-Turner structure. It used three gratings to achieve 280-2 240 nm wide band output, which achieved the high diffraction efficiency and guaranteed the spectral resolution in the whole wavelength range. The output wavelength and the motor step number was non-linear in the process of worm gear scanning, so the monochromator system was calibrated by different mathematical models. The final experiment and the measurement proved that the spectral resolution of the monochromator was better than 0.1, 0.2, 0.4 nm at 280-560 nm, 560-1 120 nm, 1 120-2 240 nm respectively. Simultaneously the wavelength repeatability reached to 0.094, 0.186, 0.372 nm, and the precision reached to 0.096, 0.191, 0.382 nm. The monochromator achieves the design goals, and meets the requirements of the wavelength calibration of the imaging spectrometer.
参考文献

[1] Fang L, Li G, Yang H, et al. Tunable Fabry-Perot filter and grating hybrid modulator to improve dispersive spectrometer resolution[J]. Applied Physics B, 2016, 122(5): 145.

[2] 刘书勤, 王斌永, 徐睿, 等. 基于多谱段集成检测的宽光谱AOTF性能测试系统[J]. 红外与激光工程, 2015, 44(4): 1343-1348.

    Liu Shuqin, Wang Binyong, Xu Rui, et al. Broad-spectral-range AOTF performance analysis system based on multi-band acquisition[J]. Infrared and Laser Engineering, 2015, 44(4): 1343-1348. (in Chinese)

[3] 夏志伟, 王凯, 方伟, 等. 基于航天单色仪的在轨辐射定标应用与发展[J]. 光学 精密工程, 2015, 23(7): 1880-1891.

    Xia Zhiwei, Wang Kai, Fang Wei, et al. Applications and development of radiation calibration in orbit based on space monochromator[J]. Optics and Precision Engineering, 2015, 23(7): 1880-1891. (in Chinese)

[4] Sullivan J V, Walsh A. The application of resonance lamps as monochromators in atomic absorption spectroscopy[J]. Spectrochimica Acta, 1966, 22(11): 1843-1852.

[5] 魏巍, 崔继承, 唐玉国, 等. 医用显微成像光谱仪的光谱定标技术[J]. 光学 精密工程, 2016, 24(5): 1015-1020.

    Wei Wei, Cui Jicheng, Tang Yuguo, et al. Spectral calibration of medical microscopic imaging spectrometer[J]. Optics and Precision Engineering, 2016, 24(5): 1015-1020. (in Chinese)

[6] Liu Yujuan, Cui Jicheng, Bayanheshig, et al. Design and application of imaging spectrometer with convex grating[J]. Optics & Precision Engineering, 2012, 20(1): 52-57. (in Chinese)

[7] 张晶, 王淑荣, 黄煜, 等. 临边成像光谱仪的发展现状与进展[J]. 中国光学, 2013, 6(5): 692-700.

    Zhang Jing, Wang Shurong, Huang Yu, et al. Status and development of limb imaging spectrometers[J]. Chinese Optics, 2013, 6(5): 692-700. (in Chinese)

[8] 崔继承, 刘玉娟, 潘明忠, 等. 成像光谱仪一体化设计[J]. 光谱学与光谱分析, 2012, 32(3): 839-843.

    Cui Jicheng, Liu Yujuan, Pan Mingzhong, et al. The integrative design for imaging spectrometer[J]. Spectroscopy and Spectral Analysis, 2012, 32(3): 839-843. (in Chinese)

[9] 吴国安. 光谱仪器设计[M]. 北京: 科学出版社, 1978: 101-105.

    Wu Guoan. Spectral Instrument Design[M]. Beijing: Science Press, 1978: 101-105. (in Chinese)

[10] 郝爱花, 胡炳樑. 非平行光束光栅照明C-T成像光谱仪消像散研究与设计[J]. 红外与激光工程, 2015, 44(7): 2132-2136.

    Hao Aihua, Hu Bingliang. Research and design of astigmatism-free for C-T imaging spectrometer under non-parallel grating illumination[J]. Infrared and Laser Engineering, 2015, 44(7): 2132-2136. (in Chinese)

[11] 邓世虎, 张荣君, 倪卫明, 等. 智能化多光栅单色仪的研制[J]. 红外与毫米波学报, 2002, 21(S1): 133-137.

    Deng Shihu, Zhang Rongjun, Ni Weiming, et al. Development of intelligentized multi-grating monochromator[J]. Journal of Infrared and Millimeter Waves, 2002, 21(S1): 133-137. (in Chinese)

[12] 李志刚. 基于探测器标准的高精度光谱辐射标准光源[J]. 中国光学, 2015, 8(6): 909-918.

    Li Zhigang. High accuracy spectroradiometric standard light source based on detector standard[J]. Chinese Optics, 2015, 8(6): 909-918. (in Chinese)

陈建军, 崔继承, 刘嘉楠, 杨晋, 孙慈. 偏轴式扫描三光栅单色仪[J]. 红外与激光工程, 2018, 47(2): 0220002. Chen Jianjun, Cui Jicheng, Liu Jia′nan, Yang Jin, Sun Ci. Off-axis scanning three-grating monochromator[J]. Infrared and Laser Engineering, 2018, 47(2): 0220002.

关于本站 Cookie 的使用提示

中国光学期刊网使用基于 cookie 的技术来更好地为您提供各项服务,点击此处了解我们的隐私策略。 如您需继续使用本网站,请您授权我们使用本地 cookie 来保存部分信息。
全站搜索
您最值得信赖的光电行业旗舰网络服务平台!