论文标题
低阶波前控制使用Zernike传感器通过lyot coronagraphs进行外部成像
Low-order wavefront control using a Zernike sensor through Lyot coronagraphs for exoplanet imaging
论文作者
论文摘要
结合了大型分段空间望远镜,冠状动脉和波前控制方法是在观察到的恒星和研究行星伴侣的冠状图像中产生一个暗洞(DH)区域的有前途的解决方案。这种高对比度设施的热和机械演变导致波前漂移在观测时间内降低DH对比度,从而限制了检索行星信号的能力。 lyot式的冠状动脉是恒星抑制系统,它以未解决的观察到的恒星,点扩散函数,带有不透明的焦平面掩码(FPM)。当用装有蚀刻针孔的平面镜实施时,面膜会通过针孔拒绝星光的一部分,该针孔可用于检索有关低阶畸变的信息。我们建议使用Zernike波前传感器(ZWF)进行主动控制方案,以分析FPM拒绝的光,控制低阶畸变并稳定DH对比度。在表征模拟和实验室中的传感器行为之前,首先提出形式主义的概念。然后,我们执行实验测试,以使用打湿测试床上的ZWF验证波前控制回路。通过控制前11个Zernike模式,我们在使用ZWFS的开放环操作和闭环操作之间显示波前误差标准偏差的减小倍数最高为9倍。在存在波前扰动的情况下,我们显示了该控制循环在7x10^-8附近稳定DH对比度的能力,标准偏差为7x10^-9。用ZWFS进行主动控制证明了具有FPM滤光的Lyot Coronagraph中有希望的解决方案,可控制和稳定低阶波浪偏转畸变,以及与未来空间任务的系外行星成像的DH对比度。
Combining large segmented space telescopes, coronagraphy and wavefront control methods is a promising solution to produce a dark hole (DH) region in the coronagraphic image of an observed star and study planetary companions. The thermal and mechanical evolution of such a high-contrast facility leads to wavefront drifts that degrade the DH contrast during the observing time, thus limiting the ability to retrieve planetary signals. Lyot-style coronagraphs are starlight suppression systems that remove the central part of the image for an unresolved observed star, the point spread function, with an opaque focal plane mask (FPM). When implemented with a flat mirror containing an etched pinhole, the mask rejects part of the starlight through the pinhole which can be used to retrieve information about low-order aberrations. We propose an active control scheme using a Zernike wavefront sensor (ZWFS) to analyze the light rejected by the FPM, control low-order aberrations, and stabilize the DH contrast. The concept formalism is first presented before characterizing the sensor behavior in simulations and in laboratory. We then perform experimental tests to validate a wavefront control loop using a ZWFS on the HiCAT testbed. By controlling the first 11 Zernike modes, we show a decrease in wavefront error standard deviation by a factor of up to 9 between open- and closed-loop operations using the ZWFS. In the presence of wavefront perturbations, we show the ability of this control loop to stabilize a DH contrast around 7x10^-8 with a standard deviation of 7x10^-9. Active control with a ZWFS proves a promising solution in Lyot coronagraphs with an FPM-filtered beam to control and stabilize low-order wavefront aberrations and DH contrast for exoplanet imaging with future space missions.