Arbitrary Phase Optimization Through Adaptively-Scheduled Nanophotonic Inverse Design

Emir Salih MAĞDEN
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Abstract

Design of integrated photonic devices continues to drive innovation in electro-optical systems for many applications ranging from communications to sensing and computing. Traditional design methods for integrated photonics involve using fundamental physical principles of guided-wave behavior to engineer optical functionalities for specific application requirements. While these traditional approaches may be sufficient for basic functionalities, the set of physically realizable optical capabilities these methods remains limited. Instead, photonic design can be formulated as an inverse problem where the target device functionality is specified, and a numerical optimizer creates the device with appropriate geometrical features within specified constraints. However, even with inverse design methods, achieving arbitrarily-specified phase offsets on-chip remains an important problem to solve for the reliability of interferometry-based nanophotonic applications. In order to address difficulties in achieving simultaneous phase and power optimization in inverse nanophotonic design, in this paper, we develop a set of optimization approaches that can enable user-specified phase differences in single-wavelength and multi-wavelength nanophotonic devices. By specifying phase offset targets for each output, we prevent convergence failures resulting from the changes in the figure of merit and gradient throughout the iterative optimization process. Additionally, by introducing phase-dependent figure of merit terms through an adaptive scheduling approach during the optimization, we accelerate device convergence up to a factor of 4.4 times. Our results outline a clear path towards the optimization of nanophotonic components with arbitrary phase-handling capabilities, with potential applications in a wide variety of integrated photonic systems and platforms.
基于自适应调度纳米光子逆设计的任意相位优化
集成光子器件的设计继续推动电光系统的创新,用于从通信到传感和计算的许多应用。集成光子学的传统设计方法涉及使用导波行为的基本物理原理来设计特定应用需求的光学功能。虽然这些传统方法可能足以满足基本功能,但这些方法在物理上可实现的光学能力仍然有限。相反,光子设计可以被表述为一个逆问题,其中指定目标器件功能,并且在指定的约束条件下,数值优化器创建具有适当几何特征的器件。然而,即使采用逆设计方法,在芯片上实现任意指定的相位偏移仍然是基于干涉测量的纳米光子应用的可靠性需要解决的一个重要问题。为了解决在逆纳米光子设计中实现同步相位和功率优化的困难,本文中,我们开发了一套优化方法,可以在单波长和多波长纳米光子器件中实现用户指定的相位差。通过为每个输出指定相位偏移目标,我们可以防止在整个迭代优化过程中由于优点图和梯度的变化而导致的收敛失败。此外,通过在优化过程中通过自适应调度方法引入相位相关的优值项,我们将设备收敛速度提高了4.4倍。我们的研究结果为优化具有任意相位处理能力的纳米光子元件勾画了一条清晰的道路,并在各种集成光子系统和平台中具有潜在的应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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