中国激光, 2012, 39 (1): 0107001, 网络出版: 2011-11-15  

3.5~4.0 μm低温光谱带通滤光片的设计与研制 下载: 639次

Design and Fabrication of 3.5~4.0 μm Band-Pass Filter Working at Cryogenic Temperature
作者单位
中国科学院上海技术物理研究所, 上海 200083
摘要
新一代气象卫星对红外带通滤光片的光谱控制提出了很高的要求:滤光片在工作温度(92 K)下的光谱曲线被严格限定在一个由内、外框组成的区域之内。分别采用Ge和SiO作为高低折射率膜层材料,设计了含有4个谐振腔的带通膜系来提升通带边缘的陡度;对带通膜系中反射膜层的光学厚度进行了优化调整,压缩了通带内的波纹;根据膜层材料的折射率温度变化特性,设计出了低温条件下符合光谱要求的带通滤光片。采用真空蒸发和光学极值监控的方法,研制出了92 K低温下符合内、外框限制要求的带通滤光片,其通带内的峰值透射率达到93.2%,平均透射率达到91%,波纹幅度控制在5.2%以内。
Abstract
There is a very high requirement for the spectrum of the band-pass filter in the new generation meteorological satellite that at working temperature (92 K), the spectrum curve of the filter must be within an area restricted by an inner rim and an outer rim. Using germanium (Ge) and silicon oxide (SiO) as the higher and the lower refractive index materials respectively, a band-pass film system with 4 resonators is designed to obtain steep slopes at pass band boundaries. The ripple in the transmission region is flattened by means of optimizing the thickness of reflecting layers in the band-pass film system. The band-pass filter that satisfies the cryogenic spectrum requirements is designed, based on the refractive index versus temperature characteristic. Using vacuum evaporation technics and photometric extrema monitoring method, the band-pass filter has been developed and it meets the requirement of the inner-outer-rim specification at 92 K. In the transmission region, its maximum transmittance is 93.2%, the average transmittance is 91%, and the amplitude of the ripple is 5.2%.
参考文献

[1] 张子业, 周东平, 张凤山. 三半波带通滤光片的制作与膜厚分析[J]. 光子学报, 2005, 34(5): 710~712

    Zhang Ziye, Zhou Dongping, Zhang Fengshan. Three half-wave filter and analysis of layer thickness[J]. Acta Photonica Sinica, 2005, 34(5): 710~712

[2] 查家明, 李斯成, 唐乾隆. 红外中带滤光片的结构, 带宽估算及调整[J]. 应用光学, 2007, 28(2): 151~155

    Zha Jiaming, Li Sicheng, Tang Qianlong. Structure, bandwidth estimation and adjustment of medium bandpass infrared filter[J]. J. Applied Optics, 2007, 28(2): 151~155

[3] I. S. Gainutdinov, A. S. Nikitin, V. A. Ivanov et al.. Cutoff and band-pass interference filters for the UV region[J]. J Opt. Technol., 2002, 69(12): 907~909

[4] 唐晋发, 顾培夫, 刘旭 等. 现代光学薄膜技术[M]. 杭州: 浙江大学出版社, 2006. 140~160

    Tang Jinfa, Gu Peifu, Liu Xu et al.. Modern Optical Thin Film Technology[M]. Hangzhou: Zhejiang University Press, 2006. 140~160

[5] H. A. Macleod. Thin-Film Optical Filters[M]. Bristol and Philadelphia: Institute of Physics Publishing, 2001. 260~280

[6] 黄心耕. 红外地球敏感器用高截止度宽带红外滤光片研制[J]. 光学仪器, 2001, 23(5): 169~173

    Huang Xingeng. Development of wide-passband infrared filter with high rejection rate for infrared earth sensor[J]. Optical Instruments, 2001, 23(5): 169~173

[7] 陈友华, 王志斌. 探测用宽截止红外双通道带通滤光片的设计及误差分析[J]. 光学学报, 2010, 30(10): 3064~3068

    Chen Youhua, Wang Zhibin. Design and error analysis of infrared dual-channel band pass filter with wide rejection band for detection application[J]. Acta Optica Sinica, 2010, 30(10): 3064~3068

[8] 张晓娟, 乔冠军, 刘汉臣. 多层光学薄膜模拟退火算法的研究[J]. 光学学报, 2010, 30(12): 3660~3664

    Zhang Xiaojuan, Qiao Guanjun, Liu Hanchen. Simulated annealing algorithm for multi-layer optical thin films[J]. Acta Optica Sinica, 2010, 30(12): 3660~3664

[9] 陈乃波, 吴永刚, 凌磊婕 等. 基于针法的平板偏振膜设计[J]. 光学学报, 2010, 30(2): 590~596

    Chen Naibo, Wu Yonggang, Ling Leijie et al.. Thin-film polarizers designed by the needle method[J]. Acta Optica Sinica, 2010, 30(2): 590~596

[10] 白胜元, 顾培夫, 刘旭 等. 薄膜滤光片的光学稳定性研究[J]. 光子学报, 2001, 30(5): 576~580

    Bai Shengyuan, Gu Peifu, Liu Xu et al.. Optical stability of thin film filters[J]. Acta Photonica Sinica, 2001, 30(5): 576~580

蔡渊, 刘定权, 罗海瀚. 3.5~4.0 μm低温光谱带通滤光片的设计与研制[J]. 中国激光, 2012, 39(1): 0107001. Cai Yuan, Liu Dingquan, Luo Haihan. Design and Fabrication of 3.5~4.0 μm Band-Pass Filter Working at Cryogenic Temperature[J]. Chinese Journal of Lasers, 2012, 39(1): 0107001.

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