Adaptive Phase Mask Coronagraph with Amplitude and Phase Modulation for High Dynamic Range Synchronous Detection: APM2 Coronagraph

被引:0
|
作者
Bourget, P. [1 ]
Mawet, D. [1 ]
Mardones, P. [1 ]
Schuhler, N. [1 ]
Pueyo, L. [2 ]
Girard, J. [1 ]
Haguenauer, P. [1 ]
Gonte, F. [1 ]
机构
[1] European So Observ, 3107 Alonso de Cordova Vitacura, Santiago, Chili, Chile
[2] Space Telescope Sci Inst, Baltimore, MD 21218 USA
关键词
High-contrast imaging; coronagraphy; polarization; high angular resolution; phase mask; adaptive optics; synchronous detection;
D O I
10.1117/12.2026211
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
We present a new Adaptive Phase Mask (APM) coronagraph design enabling Amplitude and Phase Modulation control (APM). The Adaptive Phase mask coronagraph is a technique proposed to provide both high dynamic and high angular resolution imaging of faint sources around bright objects. Discriminating faint sources from static speckles is a challenging problem. Our new system is based on synchronous demodulation that allows high dynamic range detection of a faint target immersed in a background. The APM(2) uses the coherence of speckles to discriminate them from proper companions, using the mask itself as the electric field modulator. Synchronous detection in the radio frequency range is used to side-step the effect of atmospheric turbulence and enable the detection of low amplitude signals. The APM2 concept offers high dynamic range detection and provides a time- and cost-effective method to quantify the probability of presence of a faint object close to the central star.
引用
收藏
页数:8
相关论文
共 39 条
  • [31] High speed fringe projection for dynamic shape measurement using binary phase mask. Part 2: manufacture and test
    Guo, Wen
    Coggrave, C.R.
    Huntley, J.M.
    Ruiz, P.D.
    Optics and Lasers in Engineering, 2022, 154
  • [32] Fluorescence lifetime characterization of magnesium probes: Improvement of Mg2+ dynamic range and sensitivity using phase-modulation fluorometry
    Szmacinski, Henryk
    Lakowicz, Joseph R.
    Journal of Fluorescence, 1996, 6 (02)
  • [33] High Dynamic Range 3D Measurement Based on Double 2+1 Phase-Shifting Method
    Wang Jianhua
    Yang Yanxi
    Xu Peng
    Liu Jintao
    Zhang Wen
    Shan Shuo
    Li Ze
    ACTA OPTICA SINICA, 2023, 43 (20)
  • [34] 4.0 μm Stacked Voltage Mode Global Shutter Pixels with Single Exposure High Dynamic Range and Phase Detection Auto Focus Capability
    Miyauchi, Ken
    Mori, Kazuya
    Isozaki, Toshiyuki
    Sawai, Yusuke
    Yasuda, Naoto
    Chien, Ho-Ching
    Fu, Ken Wen-Chien
    Takayanagi, Isao
    Nakamura, Junichi
    ITE TRANSACTIONS ON MEDIA TECHNOLOGY AND APPLICATIONS, 2022, 10 (04): : 234 - 242
  • [35] Atomic Layer Deposition of GeSb2Te4 Thin Films for Reliable Phase Change Memory With a High Dynamic Range
    Zhu, Rongjiang
    Zhao, Ruizhe
    Gao, Ke
    Tong, Hao
    Miao, Xiangshui
    IEEE ELECTRON DEVICE LETTERS, 2023, 44 (09) : 1452 - 1455
  • [36] Ultra-high phase transition amplitude of Fe-doped high-performance VO2 films manufactured by DC-magnetron sputtering for modulation application
    Xiang, Zihao
    Wu, Zhiming
    Shi, Yuanlin
    Dong, Xiang
    Li, Chunyu
    Chen, Xuanru
    Wang, Jun
    Jiang, Yadong
    SEVENTH ASIA PACIFIC CONFERENCE ON OPTICS MANUFACTURE (APCOM 2021), 2022, 12166
  • [37] Large-range high-precision macroscopic common phase detection of segmented mirrors based on white light dynamic Twyman-Green interferometer
    Rui, Jiuduo
    Han, Zhigang
    Deng, Jiaxin
    Li, Fangxin
    Yang, Zhenying
    Pan, Liqiang
    Zhu, Rihong
    OPTICS AND LASERS IN ENGINEERING, 2024, 182
  • [38] Design of a wide range and high precision phase/duty-cycle correction circuit for modulation driving of 2D/3D image sensors☆
    Zou, Xiduo
    Gao, Jing
    Nie, Kaiming
    Shi, Zaifeng
    Xu, Jiangtao
    MICROELECTRONICS JOURNAL, 2024, 149
  • [39] Three phase spectral interferometry for recording high dynamic range optical waveforms with <1 ps resolution over >2 ns records applied to closed-loop pulse shaping
    Muir, R. D.
    Mittelberger, D. E.
    Heebner, J. E.
    APPLIED OPTICS, 2024, 63 (22) : 5991 - 5999