论文标题
光子灯笼I:理论框架的焦平面波前传感
Focal-plane wavefront sensing with photonic lanterns I: theoretical framework
论文作者
论文摘要
光子灯笼(PL)是一种锥形波导,可以有效地将光融入多个单模光纤中。目前正在考虑进行多项任务的此类设备,包括望远镜和高分辨率,光纤式光谱仪的耦合,相干检测,无效干涉法和涡流纤维nulling(VFN)。与这些用例结合使用,PL可以同时执行低阶焦点波前传感。在这项工作中,我们提供了一个数学框架,用于分析光子灯笼波前传感器(PLWFS),衍生线性和高阶重建模型以及可以量化传感性能(在线性和非线性方案中)的指标。可以扩展该框架以说明其他光学器件,例如光束塑形光学和涡旋掩模,并且可以推广到其他波前传感体系结构。最后,我们通过模拟6端口PLWF来提供数学模型的初始数值验证。在同伴论文中,我们提供了几个端口PLWFS的更全面的数值表征,并考虑如何控制和优化这些设备的传感属性。
The photonic lantern (PL) is a tapered waveguide that can efficiently couple light into multiple single-mode optical fibers. Such devices are currently being considered for a number of tasks, including the coupling of telescopes and high-resolution, fiber-fed spectrometers, coherent detection, nulling interferometry, and vortex-fiber nulling (VFN). In conjunction with these use cases, PLs can simultaneously perform low-order focal-plane wavefront sensing. In this work, we provide a mathematical framework for the analysis of the photonic lantern wavefront sensor (PLWFS), deriving linear and higher-order reconstruction models as well as metrics through which sensing performance -- both in the linear and nonlinear regimes -- can be quantified. This framework can be extended to account for additional optics such as beam-shaping optics and vortex masks, and is generalizable to other wavefront sensing architectures. Lastly, we provide initial numerical verification of our mathematical models, by simulating a 6-port PLWFS. In a companion paper, we provide a more comprehensive numerical characterization of few-port PLWFSs, and consider how the sensing properties of these devices can be controlled and optimized.