光子学报, 2017, 46 (3): 0322001, 网络出版: 2017-04-10   

高衍射效率衍射望远镜系统的设计/加工及成像性能测试

Design/fabrication and Performance Test of a Diffractive Telescope System with High Diffraction Efficiency
作者单位
1 中国科学院长春光学精密机械与物理研究所 中国科学院光学系统先进制造技术重点实验室, 长春 130033
2 中国科学院大学, 北京 100049
3 中国科学院长春光学精密机械与物理研究所 光电技术研发中心, 长春 130033
摘要
为提高衍射效率, 设计并制作了口径为300 mm的衍射成像系统.该系统的物镜是由一块四台阶位相型菲涅尔波带片通过激光直写套刻和Ar离子束物理刻蚀技术在石英玻璃基板上加工而成.测试了衍射物镜的衍射效率, 实验结果表明: 衍射物镜在波长632.8 nm处的衍射效率为66.4%, 达到理论值的82%.搭建了衍射成像系统光路, 分别采用10 μm星点孔与分辨率板, 测试了系统的成像性能.实验测得星点像直径为44 μm, 分辨率板的极限分辨率达到84 lp/mm, 接近该系统的理论计算值, 表明该衍射成像系统具有较好的成像性能.
Abstract
In order to improve the diffraction efficiency, a diffractive telescope system with 300 mm aperture was designed and fabricated. The primary lens of the proposed system is made form a four-step phase Fresnel zone plate which is fabricated on fused silica substrate by laser direct writing and Ar ion beam etching. The diffraction efficiency of primary lens of the diffractive system was tested. The tested results show that the diffraction efficiency of the diffractive lens at wavelength 632.8 nm is 66.3%, about 82% of the theoretical value. The light path of diffraction imaging system was built, and the imaging performance was tested by both the star image test and the resolution test. The diameter of the star image is 44 μm and the limit resolution is 84 lp/mm, which are very close to the theoretical values, showing the diffractive system has a good imaging performance.
参考文献

[1] 石顺祥, 王学恩, 刘劲松. 物理光学与应用光[M].西安: 西安电子科学技术大学出版社, 2008.

[2] 杨帅, 沙巍, 陈长征, 等. 大口径离轴长条形反射镜的检测支撑机构[J]. 光学精密工程, 2015,23(10): 2835-2842.

    YAHG Shuai, SHA Wei, CHEN Chang-zheng, et al. Detection support structure of large-aperture off-axis rectangular mirror[J]. Optics and Precision Engineering, 2015, 23(10): 2835-2842.

[3] GARDNER J P, MATHER J C, CLAMPIN M, et al. The james webb space telescope [J]. Space Science Reviews, 2009, 123(4): 485-606.

[4] 刘玉凤, 李林. 二元光学透镜在资源卫星中的应用[J]. 光学技术, 2004, 30(5): 590-593.

    LIU Yu-feng, LI Lin. Application of binary optical lens in resource satellite[J]. Optical Technique, 2004, 30(5): 590-593.

[5] 张健, 栗孟娟, 阴刚华, 等. 用于太空望远镜的大口径薄膜菲涅尔衍射元件[J]. 光学精密工程, 2016,24(6): 1289-1296.

    ZHANG Jian, LI Meng-juan, YIN Gang-hua, et al. Large-diameter membrane Fresnel diffraction elements for space telescope[J]. Optics and Precision Engineering, 2016, 24(6): 1289-1296.

[6] 金国藩, 严瑛白, 邬敏贤. 二元光学[M]. 北京: 国防工业出版社,1998.

[7] 刘民哲, 刘华, 许文斌, 等. 用于空间望远镜的膜光子筛 [J].光学精密工程, 2014, 22(8): 2127-2134.

    LIU Min-zhe, LIU Hua, XU Wen-bin, et al. Membrane photo sieve for space telescope[J]. Optics and Precision Engineering, 2014, 22(8): 2127-2134.

[8] 刘华, 卢振武, 闫勇.大口径衍射望远镜系统公差分析及测量[J].光子学报, 2013,42(10): 1203-1207.

    LIU Hua, LU Zhen-wu, YAN Yong. Large aperture diffractive telescope tolerance analysis and measurement[J]. Acta Photonica Sinica, 2013, 42(10): 1203-1207.

[9] RODERICK A H. Eyeglass. 1. Very large aperture diffractive telescopes[J]. Applied Optics, 1999, 38(19): 4198-4212.

[10] HYDE R A, DIXIT S N, WEISBERG A H, et al. Eyeglass: a very large aperture diffractive space telescope[C]. Astronomical Telescopes and Instrumentation. International Society for Optics and Photonics, 2002: 28-39.

[11] JERAD A B, SHAMUSUNDAR N D, MICHAEL D, et al. Large-aperture fast multilevel Fresnel zone lenses in glass and ultrathin polymer films for visible and near-infrared imaging applications[J]. Applied Optics, 2014, 53(11): 2312-2316.

[12] HAWARDEN T G, JOHNSTONE C, JOHNSTONE G. GISMO, an ELT in space: a giant (30-m) far-infrared and sub-millimetre space observatory[C]. SPIE, 2003, 5382: 95-104.

[13] 张楠, 卢振武, 李凤有. 衍射望远镜光学系统设计[J]. 红外与激光工程, 2007, 36(1): 106-108.

    ZHANG Nan, LU Zhen-wu, LI Feng-you. Optical design of diffractive telescope[J]. Infrared and Laser Engineering, 2007, 36(1): 106-108.

[14] HUFNAGEL R E. Achromatic holographic optical system: US, US 4550973 A[P]. 1985.

[15] FAKLIS D, MORRIS G M. Broadband imaging with holographic lenses[J]. Optical Engineering, 1989, 28(6): 592-598.

[16] 李凤有, 卢振武, 谢永军, 等. 离焦激光直写光刻工艺研究[J]. 中国激光, 2002, 29(9): 850-854.

    LI Feng-you, LU Zhen-wu, XIE Yong-jun, et al. Photolithographic fabrication techniques by using defocusing laser direct writing[J]. Chinese Journal of Lasers, 2002, 29(9): 850-854.

[17] 李凤有, 谢永军, 孙强, 等. 激光直写光刻中线条轮廓的分析[J]. 光子学报, 2004, 33(12): 136-139.

    LI Feng-you, XIE Yong-jun, SUN Qiang, et al. Analyzing of line profile for laser direct writing lithography[J]. Acta Photonica Sinica, 2004, 33(12): 136-139.

[18] KUTTNER P. Image quality of optical systems for truncated Gaussian laser beams [J]. Optical Engineering, 1986, 25(1): 180-183.

[19] LI Feng-you, LU Zhen-wu, XIE Yong-jun, et al. Photolithographic fabrication techniques by using defocusing laser direct writing[J]. Chinese Journal of Lasers, 2002, 29(9): 850-854.

[20] NAKAHARA S. Fabrication of the multi-level phase type hologram for display using the laser direct write lithography system[C]. SPIE, 2012, 8281(8): 828116.

[21] 赵龙波, 张志宇, 朱德燕, 等.用于非球面检验的激光直写高准确度计算全息图制作研究[J]. 激光与光电子学进展, 2014,51(11): 110902.

    ZHAO Long-bo, ZHANG Zhi-yu, ZHU De-yan, et al. Fabrication of high precision computer generated hologram for aspheric surface testing by laser-direct writing[J]. Laser & Optoelectronics Progress, 2014, 51(11): 110902.

[22] 张以谟.应用光学[M]. 北京: 电子工业出版社, 2010.

王若秋, 张志宇, 国成立, 薛栋林, 张学军, 刘华. 高衍射效率衍射望远镜系统的设计/加工及成像性能测试[J]. 光子学报, 2017, 46(3): 0322001. WANG Ruo-qiu, ZHANG Zhi-yu, GUO Cheng-li, XUE Dong-lin, ZHANG Xue-jun, LIU Hua. Design/fabrication and Performance Test of a Diffractive Telescope System with High Diffraction Efficiency[J]. ACTA PHOTONICA SINICA, 2017, 46(3): 0322001.

本文已被 4 篇论文引用
被引统计数据来源于中国光学期刊网
引用该论文: TXT   |   EndNote

相关论文

加载中...

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!