Modeling and performance analysis of implicit electric field conjugation with two deformable mirrors applied to the Roman Coronagraph

Kian Milani, Ewan Douglas, S. Haffert, K. V. Gorkom
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Abstract

High-order wavefront sensing and control (HOWFSC) is key to create a dark hole region within the coronagraphic image plane where high contrasts are achieved. The Roman Coronagraph is expected to perform its HOWFSC with a ground-in-the-loop scheme due to the computational complexity of the Electric Field Conjugation (EFC) algorithm. This scheme provides the flexibility to alter the HOWFSC algorithm for given science objectives. The baseline HOWFSC scheme involves running EFC while observing a bright star such as {\zeta} Puppis to create the initial dark hole followed by a slew to the science target. The new implicit EFC (iEFC) algorithm removes the optical diffraction model from the controller, making the final contrast independent of model accuracy. While previously demonstrated with a single DM, iEFC is extended to two deformable mirror systems in order to create annular dark holes. The algorithm is then applied to the Wide-Field-of-View Shaped Pupil Coronagraph (SPC-WFOV) mode designed for the Roman Space Telescope using end-to-end physical optics models. Initial monochromatic simulations demonstrate the efficacy of iEFC as well as the optimal choice of modes for the SPC-WFOV instrument. Further simulations with a 3.6% wavefront control bandpass and a broader 10% bandpass then demonstrate that iEFC can be used in broadband scenarios to achieve contrasts below 1E-8 with Roman. Finally, an EMCCD model is implemented to estimate calibration times and predict the controller's performance. Here, 1E-8 contrasts are achieved with a calibration time of about 6.8 hours assuming the reference star is {\zeta} Puppis. The results here indicate that iEFC can be a valid HOWFSC method that can mitigate the risk of model errors associated with space-borne coronagraphs, but to maximize iEFC performance, lengthy calibration times will be required to mitigate the noise accumulated during calibration.
应用于 Roman Coronagraph 的带两个可变形反射镜的隐式电场共轭的建模和性能分析
高阶波前传感和控制(HOWFSC)是在日冕仪图像平面内形成暗洞区域以实现高对比度的关键。由于电场共轭(EFC)算法的计算复杂性,Roman Coronagraph 预计将采用地中环方案来执行 HOWFSC。该方案提供了针对特定科学目标改变 HOWFSC 算法的灵活性。基线HOWFSC方案包括在观测{\zeta} Puppis等明亮恒星时运行EFC,以产生初始暗洞,然后回转到科学目标。新的隐式 EFC(iEFC)算法将光学衍射模型从控制器中移除,使最终对比度与模型精度无关。iEFC 之前是在单个 DM 上演示的,现在扩展到了两个可变形反射镜系统,以创建环形暗洞。然后,利用端到端物理光学模型,将该算法应用于为罗曼太空望远镜设计的宽视场异型瞳孔日冕仪(SPC-WFOV)模式。最初的单色模拟证明了 iEFC 的功效以及 SPC-WFOV 仪器模式的最佳选择。随后,使用 3.6% 波前控制带通和更宽的 10% 带通进行的进一步模拟证明,iEFC 可用于宽带场景,与罗曼的对比度可低于 1E-8。最后,实施 EMCCD 模型来估计校准时间和预测控制器的性能。在这里,假定参考星是{zeta} Puppis,1E-8 的对比度是在大约 6.8 小时的校准时间内实现的。这里的结果表明,iEFC是一种有效的HOWFSC方法,可以减轻与星载日冕仪相关的模型误差风险,但要最大限度地提高iEFC的性能,需要较长的校准时间来减轻校准过程中积累的噪声。
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