Upgrading the MMT AO system with a Near-Infrared Pyramid Wavefront Sensor

被引:5
|
作者
Liu, Siqi [1 ,2 ]
Sivanandam, Suresh [1 ,2 ]
Chen, Shaojie [2 ]
Lamb, Masen [2 ]
Butko, Adam [1 ,2 ]
Veran, Jean-Pierre [3 ]
Hinz, Phil [4 ]
Mieda, Etsuko [5 ]
Hardy, Tim [3 ]
Lardiere, Olivier [3 ]
Shore, Eric [6 ]
机构
[1] Univ Toronto, Dept Astron & Astrophys, 50 St George St, Toronto, ON M5S 3H4, Canada
[2] Univ Toronto, Dunlap Inst Astron & Astrophys, 50 St George St, Toronto, ON M5S 3H4, Canada
[3] Natl Res Council Canada, Herzberg Astron & Astrophys, 5071 W Saanich Rd, Victoria, BC V9E 2E7, Canada
[4] Univ Arizona, Steward Observ, 933 N Cherry Ave, Tucson, AZ USA
[5] Subaru Telescope, 650 N Aohoku Pl, Hilo, HI USA
[6] Univ Toronto, Ontario Inst Studies Educ, 50 St George St, Toronto, ON M5S 3H4, Canada
来源
ADAPTIVE OPTICS SYSTEMS VI | 2018年 / 10703卷
关键词
Adaptive Optics; Wavefront Sensing;
D O I
10.1117/12.2304584
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
There are long existing limitations of the sky coverage of astronomical Adaptive Optics (AO) systems that use natural guide stars (NGSes) as reference sources. In this work, we present numerical simulations and lab test results of an optical NGS double roof prisms wavefront sensor and an upgrade plan for the near-infrared (NIR) pyramid wavefront sensor (PWFS) MMT AO system covering the wavelength range from 0.85-1.8 mu m. The potential increase of sky coverage benefits from the gain in sensitivity of the PWFS in a system compared with the optical Shack-Hartmann wavefront sensor (SHWFS), using IR avalanche photodiode (APD) array with extremely low readout noise (at sub-electron level) at a high frame rate (over 1kHz). This upgraded system will access a larger portion of the sky by looking at fainter, redder reference stars. We use AO simulations to show the expected limiting magnitude gain of NIR PWFS compared with the existing optical SHWFS. The sky coverage will increase by 11 times at the Galactic plane and by 6 times at the North Galactic Pole when compared to traditional optical WFSes. This novel WFS will also enable observations of the dust obscured plane of the Galaxy, where the optical light of most stars is more extincted. Due to the difficulties of the manufacture of pyramid prisms, we demonstrate an optical lab test with a set of double roof prisms. We will upgrade to SAPHIRA where the set of double roof prisms would be used for NIR detection and an achromatic pyramid prism for future lab tests. We evaluate the overall performance of the PWFS on our lab AO bench, present captured micro-pupil images and demonstrate the wavefront reconstruction. We plan to implement this system at MMT and carry out on-sky tests in 2019.
引用
收藏
页数:11
相关论文
共 50 条
  • [31] PYRAMIR: first on-sky results from an infrared pyramid wavefront sensor
    Feldt, M.
    Peter, D.
    Hippler, S.
    Henning, Th.
    Aceituno, J.
    Goto, M.
    ADVANCES IN ADAPTIVE OPTICS II, PRS 1-3, 2006, 6272 : U423 - U428
  • [32] Low noise, near-infrared APDs for laser wavefront monitoring
    Kodati, Sri Harsha
    Lee, Seunghyun
    Ronningen, Theodore J.
    Winslow, Martin
    Grein, Christoph
    Krishna, Sanjay
    LASER TECHNOLOGY FOR DEFENSE AND SECURITY XV, 2019, 10981
  • [33] NEAR-INFRARED TELEMETRY SYSTEM
    TAKAHASHI, M
    POLLAK, V
    MEDICAL & BIOLOGICAL ENGINEERING & COMPUTING, 1985, 23 (04) : 387 - 392
  • [34] Measurement of the wavefront collimation of a large aperture near-infrared interferometer using a scanning pentaprism system
    Liu Z.
    Yu L.
    Han Z.
    Chen L.
    Zhongguo Jiguang/Chinese Journal of Lasers, 2010, 37 (04): : 1082 - 1087
  • [35] Construction and testing of the wavefront sensor camera for the new MMT adaptive optics system
    McGuire, PC
    Rhoadarmer, TA
    Lloyd-Hart, M
    Shelton, JC
    Lesser, MP
    Angel, JRP
    Angeli, GZ
    Hughes, JM
    Fitz-Patrick, BC
    Rademacher, ML
    Schaller, P
    Kenworthy, MA
    Wildi, FP
    Capara, JG
    Ouellette, DB
    ADAPTIVE OPTICS SYSTEMS AND TECHNOLOGY, 1999, 3762 : 269 - 282
  • [36] Wavefront sensor design for the GMT natural guide star AO system
    Esposito, S.
    Pinna, E.
    Quiros-Pacheco, F.
    Puglisi, A. T.
    Carbonaro, L.
    Bonaglia, M.
    Biliotti, V.
    Briguglio, R.
    Agapito, G.
    Arcidiacono, C.
    Busoni, L.
    Xompero, M.
    Riccardi, A.
    Fini, L.
    Bouchez, A.
    ADAPTIVE OPTICS SYSTEMS III, 2012, 8447
  • [37] Near-infrared spectroscopy probe with position sensor
    Taue, S
    Fukuda, M
    Yamamoto, H
    Hayasaki, Y
    Nishida, N
    OPTICAL REVIEW, 2005, 12 (02) : 149 - 154
  • [38] Near-Infrared Spectroscopy Probe with Position Sensor
    Shuji Taue
    Mayumi Fukuda
    Hirotsugu Yamamoto
    Yoshio Hayasaki
    Nobuo Nishida
    Optical Review, 2005, 12 : 149 - 154
  • [39] Near-infrared Image Enhancement Method in IRFPA Based on Steerable Pyramid
    Zheng, Qinghe
    Tian, Xinyu
    Yang, Mingqiang
    Liu, Shi
    ENGINEERING LETTERS, 2019, 27 (02) : 352 - 363
  • [40] Near-infrared image enhancement method in IRFPA based on steerable pyramid
    Zheng, Qinghe
    Tian, Xinyu
    Yang, Mingqiang
    Liu, Shi
    Engineering Letters, 2019, 27 (02): : 352 - 363