Wavefront sensing and adaptive optics in strong turbulence

被引:3
|
作者
Mackey, R [1 ]
Dainty, C [1 ]
机构
[1] Natl Univ Ireland Univ Coll Galway, Dept Phys, Appl Opt Grp, Galway, Ireland
来源
关键词
adaptive optics; strong turbulence; scintillation;
D O I
10.1117/12.605071
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
When light propagates through the atmosphere the fluctuating refractive index caused by temperature gradients, humidity fluctuations and the wind mixing of air cause the phase of the optical field to be corrupted. In strong turbulence, over horizontal paths or at large zenith angles, the phase aberration is converted to intensity variation (scintillation) as interference within the beam and diffraction effects produce the peaks and zeros of a speckle-like pattern. At the zeros of intensity the phase becomes indeterminate as both the real and imaginary parts of the field go to zero. The wavefront is no longer continuous but contains dislocations along lines connecting phase singularities of opposite rotation. Conventional adaptive optics techniques of wavefront sensing and wavefront reconstruction do not account for discontinuous phase functions and hence can only conjugate an averaged, continuous wavefront. We are developing an adaptive optics system that can cope with dislocations in the phase function for potential use in a line-of-sight optical communications link. Using a ferroelectric liquid crystal spatial light modulator (FLC SLM) to generate dynamic atmospheric phase screens in the laboratory, we simulate strong scintillation conditions where high densities of phase singularities exist in order to compare wavefront sensors for tolerance to scintillation and accuracy of wavefront recovery.
引用
收藏
页码:23 / 29
页数:7
相关论文
共 50 条
  • [1] Phase contrast wavefront sensing for adaptive optics
    Bloemhof, EE
    Wallace, JK
    ADVANCED WAVEFRONT CONTROL: METHODS, DEVICES, AND APPLICATIONS II, 2004, 5553 : 159 - 169
  • [2] Wavefront sensing techniques for adaptive optics systems
    Ray, M
    Sarkar, SK
    Chakraborty, RN
    Basuray, A
    PHOTONICS 2000: INTERNATIONAL CONFERENCE ON FIBER OPTICS AND PHOTONICS, 2001, 4417 : 555 - 557
  • [3] Wavefront sensing and adaptive optics for solar prominences
    Schmidt, Dirk
    Rimmele, Thomas
    Gorceix, Nicolas
    ADAPTIVE OPTICS SYSTEMS VI, 2018, 10703
  • [4] A flexible testbed for adaptive optics in strong turbulence
    Schmidt, Jason D.
    Steinbock, Michael J.
    Berg, Eric C.
    ATMOSPHERIC PROPAGATION VIII, 2011, 8038
  • [5] Simulation of adaptive optics compensation for wavefront degradation induced by turbulence
    Wang, YJ
    Wu, Y
    Gong, ZB
    IMAGE PROPAGATION THROUGH THE ATMOSPHERE, 1996, 2828 : 457 - 462
  • [6] WAVEFRONT DISTORTION SENSING FOR CONTROL OF AN ADAPTIVE OPTICS SYSTEM
    FRIED, DL
    JOURNAL OF THE OPTICAL SOCIETY OF AMERICA, 1976, 66 (04) : 391 - 391
  • [7] NEW WAVEFRONT SENSING CONCEPTS FOR ADAPTIVE OPTICS INSTRUMENTATION
    El Hadi, K.
    Gray, M.
    Fusco, T.
    Le Roux, B.
    OPTICS IN ATMOSPHERIC PROPAGATION AND ADAPTIVE SYSTEMS XV, 2012, 8535
  • [8] The design and optimization of detectors for adaptive optics wavefront sensing
    Adkins, Sean M.
    Azucena, Oscar
    Nelson, Jerry E.
    ADVANCES IN ADAPTIVE OPTICS II, PRS 1-3, 2006, 6272 : U470 - U481
  • [9] Rolling shutter detector for adaptive optics wavefront sensing
    Gago, F.
    Marchetti, Enrico
    Suarez-Valles, Marcos
    ADAPTIVE OPTICS SYSTEMS IX, 2024, 13097
  • [10] Wavefront Sensing with Prisms for Astronomical Imaging with Adaptive Optics
    Engler, Byron
    Weddell, Steve
    Clare, Richard
    2017 INTERNATIONAL CONFERENCE ON IMAGE AND VISION COMPUTING NEW ZEALAND (IVCNZ), 2017,