Crepp Justin R, Letchev Stanimir O, Potier Sam J, Follansbee Joshua H, Tusay Nicholas T
Opt Express. 2020 Dec 7;28(25):37721-37733. doi: 10.1364/OE.408825.
Strong turbulence conditions create amplitude aberrations through the effects of near-field diffraction. When integrated over long optical path lengths, amplitude aberrations (seen as scintillation) can nullify local areas in the recorded image of a coherent beam, complicating the wavefront reconstruction process. To estimate phase aberrations experienced by a telescope beam control system in the presence of strong turbulence, the wavefront sensor (WFS) of an adaptive optics must be robust to scintillation. We have designed and built a WFS, which we refer to as a "Fresnel sensor," that uses near-field diffraction to measure phase errors under moderate to strong turbulent conditions. Systematic studies of its sensitivity were performed with laboratory experiments using a point source beacon. The results were then compared to a Shack-Hartmann WFS (SHWFS). When the SHWFS experiences irradiance fade in the presence of moderate turbulence, the Fresnel WFS continues to routinely extract phase information. For a scintillation index of S = 0.55, we show that the Fresnel WFS offers a factor of 9 × gain in sensitivity over the SHWFS. We find that the Fresnel WFS is capable of operating with extremely low light levels, corresponding to a signal-to-noise ratio of only SNR≈2-3 per pixel. Such a device is well-suited for coherent beam propagation, laser communications, remote sensing, and applications involving long optical path-lengths, site-lines along the horizon, and faint signals.
强湍流条件会通过近场衍射效应产生幅度像差。当在长光程上进行积分时,幅度像差(表现为闪烁)会使相干光束记录图像中的局部区域消失,从而使波前重建过程变得复杂。为了估计在强湍流存在的情况下望远镜光束控制系统所经历 的相位像差,自适应光学的波前传感器(WFS)必须对闪烁具有鲁棒性。我们设计并制造了一种WFS,我们称之为“菲涅耳传感器”,它利用近场衍射在中等到强湍流条件下测量相位误差。使用点源信标通过实验室实验对其灵敏度进行了系统研究。然后将结果与夏克 - 哈特曼波前传感器(SHWFS)进行比较。当中等湍流存在时SHWFS经历辐照度衰减时,菲涅耳波前传感器仍能继续常规地提取相位信息。对于闪烁指数S = 0.55,我们表明菲涅耳波前传感器在灵敏度上比SHWFS提高了9倍。我们发现菲涅耳波前传感器能够在极低光水平下工作,对应于每个像素仅约SNR≈2 - 3的信噪比。这样的设备非常适合相干光束传播、激光通信、遥感以及涉及长光程、沿地平线的视线路径和微弱信号的应用。