High-resolution visible imaging with piezoelectric deformable secondary mirror: experimental results at the 1.8-m adaptive telescope

被引:16
|
作者
Guo, Youming [1 ,2 ,3 ,4 ]
Chen, Kele [1 ,2 ,3 ,4 ,5 ]
Zhou, Jiahui [1 ,2 ,3 ,4 ]
Li, Zhengdai [1 ,2 ,3 ,4 ]
Han, Wenyu [1 ,2 ,3 ,4 ]
Rao, Xuejun [1 ,2 ,3 ]
Bao, Hua [1 ,2 ,3 ]
Yang, Jinsheng [1 ,2 ,3 ]
Fan, Xinlong [1 ,2 ,3 ]
Rao, Changhui [1 ,2 ,3 ,4 ]
机构
[1] Chinese Acad Sci, Key Lab Adapt Opt, Chengdu 610209, Peoples R China
[2] Chinese Acad Sci, Inst Opt & Elect, Chengdu 610209, Peoples R China
[3] Univ Chinese Acad Sci, Beijing 100049, Peoples R China
[4] Univ Chinese Acad Sci, Sch Elect Elect & Commutat Engn, Beijing 100049, Peoples R China
[5] Natl Key Lab Opt Field Manipulat Sci & Technol, Chengdu 610209, Peoples R China
基金
中国国家自然科学基金;
关键词
adaptive optics; deformable secondary mirror; visible imaging; OPTICS;
D O I
10.29026/oea.2023.230039
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
Integrating deformable mirrors within the optical train of an adaptive telescope was one of the major innovations in astronomical observation technology, distinguished by its high optical throughput, reduced optical surfaces, and the incorporation of the deformable mirror. Typically, voice-coil actuators are used, which require additional position sensors, internal control electronics, and cooling systems, leading to a very complex structure. Piezoelectric deformable secondary mirror technologies were proposed to overcome these problems. Recently, a high-order piezoelectric deformable secondary mirror has been developed and installed on the 1.8-m telescope at Lijiang Observatory in China to make it an adaptive telescope. The system consists of a 241-actuator piezoelectric deformable secondary mirror, a 192-sub-aperture Shack Hartmann wavefront sensor, and a multi-core-based real-time controller. The actuator spacing of the PDSM measures 19.3 mm, equivalent to approximately 12.6 cm when mapped onto the primary mirror, significantly less than the voice coil-based adaptive telescopes such as LBT, Magellan and VLT. As a result, stellar images with Strehl ratios above 0.49 in the R band have been obtained. To our knowledge, these are the highest R band images captured by an adaptive telescope with deformable secondary mirrors. Here, we report the system description and on-sky performance of this adaptive telescope.
引用
收藏
页数:13
相关论文
共 33 条
  • [1] High-resolution visible imaging with piezoelectric deformable secondary mirror:experimental results at the 1.8-m adaptive telescope
    Youming Guo
    Kele Chen
    Jiahui Zhou
    Zhengdai Li
    Wenyu Han
    Xuejun Rao
    Hua Bao
    Jinsheng Yang
    Xinlong Fan
    Changhui Rao
    Opto-ElectronicAdvances, 2023, 6 (12) : 19 - 31
  • [2] Testbed for an adaptive secondary mirror of 1.8m telescope
    Fan, Xinlong
    Guan, Chunlin
    Rao, Changhui
    OPTICAL DESIGN AND TESTING IV, 2010, 7849
  • [3] First light of the deformable secondary mirror-based adaptive optics system on 1.8m telescope
    Guo, Youming
    Zhang, Ang
    Fan, Xinlong
    Rao, Changhui
    Wei, Ling
    Xian, Hao
    Wei, Kai
    Zhang, Xiaojun
    Guan, Chunlin
    Li, Min
    Zhou, Luchun
    Jin, Kai
    Zhang, Junbo
    Zhou, Longfeng
    Zhang, Xuejun
    Zhang, Yudong
    ADAPTIVE OPTICS SYSTEMS V, 2016, 9909
  • [4] Adaptive optical system based on deformable secondary mirror on 1.8-meter telescope
    Rao, Changhui
    Zhang, Ang
    Fan, Xinlong
    Guo, Youming
    Wei, Kai
    Guan, Chunlin
    Zhang, Xuejun
    Li, Cheng
    Zhou, Luchun
    Chen, Shanqiu
    Xian, Hao
    Ma, Wenli
    Cheng, Yuntao
    Zhou, Hong
    Zhang, Yudong
    ADAPTIVE OPTICS SYSTEMS III, 2012, 8447
  • [5] High-resolution images of orbital motion in the trapezium cluster: First scientific results from the multiple mirror telescope deformable secondary mirror adaptive optics system
    Close, LM
    Wildi, F
    Lloyd-Hart, M
    Brusa, G
    Fisher, D
    Miller, D
    Riccardi, A
    Salinari, P
    McCarthy, DW
    Angel, R
    Allen, R
    Martin, HM
    Sosa, RG
    Montoya, M
    Rademacher, M
    Rascon, M
    Curley, D
    Siegler, N
    Duschl, WJ
    ASTROPHYSICAL JOURNAL, 2003, 599 (01): : 537 - 547
  • [6] High-resolution fundus imaging using a micromachined membrane deformable mirror
    Bartsch, DG
    Zuh, L
    Sun, PC
    Fainman, Y
    Freeman, WR
    INVESTIGATIVE OPHTHALMOLOGY & VISUAL SCIENCE, 1999, 40 (04) : S124 - S124
  • [7] High-Resolution Retinal Imaging With Dual-Deformable-Mirror Adaptive Optics Scanning Laser Ophthalmoscope
    Zou, W.
    Qi, X.
    Burns, S. A.
    INVESTIGATIVE OPHTHALMOLOGY & VISUAL SCIENCE, 2010, 51 (13)
  • [8] Adaptive scanning optical microscope: large field of view and high-resolution imaging using a MEMS deformable mirror
    Potsaid, Benjamin
    Wen, John Ting-Yung
    JOURNAL OF MICRO-NANOLITHOGRAPHY MEMS AND MOEMS, 2008, 7 (02):
  • [9] Adaptive compensation of atmospheric effects with a high-resolution micro-machined deformable mirror
    Weyrauch, T
    Vorontsov, MA
    Gowens, JW
    HIGH-RESOLUTION WAVEFRONT CONTROL: METHODS, DEVICES, AND APPLICATIONS IV, 2002, 4825 : 14 - 23
  • [10] The adaptive secondary mirror for the 6.5m conversion of the Multiple Mirror Telescope: first laboratory testing results
    Brusa, G
    Riccardi, A
    Biliotti, V
    Del Vecchio, C
    Salinari, P
    Stefanini, P
    Mantegazza, P
    Biasi, R
    Andrighettoni, M
    Franchini, C
    Gallieni, D
    ADAPTIVE OPTICS SYSTEMS AND TECHNOLOGY, 1999, 3762 : 38 - 49