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使用降维技术设计慢光增强型双峰干涉仪。

Design of slow-light-enhanced bimodal interferometers using dimensionality reduction techniques.

作者信息

Torrijos-Morán Luis, García-Rupérez Jaime

出版信息

Opt Express. 2021 Oct 11;29(21):33962-33975. doi: 10.1364/OE.425865.

Abstract

Interferometers usually require long paths for the ever-increasing requirements of high-performance operation, which hinders the miniaturization and integration of photonic circuits into very compact devices. Slow-light based interferometers provide interesting advantages in terms of both compactness and sensitivity, although their optimization is computationally costly and inefficient, due to the large number of parameters to be simultaneously designed. Here we propose the design of slow-light-enhanced bimodal interferometers by using principal component analysis to reduce the high-dimensional design space. A low-dimensional hyperplane containing all optimized designs is provided and investigated for changes in the silicon core and cladding refractive index. As a result, all-dielectric single-channel interferometers as modulators of only 33 µm footprint and sensors with 19.2 × 10 2πrad/RIU·cm sensitivity values are reported and validated by 2 different simulation methods. This work allows the design and optimization of slow light interferometers for different applications by considering several performance criteria, which can be extended to other photonic structures.

摘要

由于对高性能运行的要求不断提高,干涉仪通常需要较长的光路,这阻碍了光子电路向非常紧凑的设备小型化和集成。基于慢光的干涉仪在紧凑性和灵敏度方面都具有显著优势,尽管由于需要同时设计大量参数,其优化在计算上成本高昂且效率低下。在此,我们提出通过主成分分析来减少高维设计空间,从而设计慢光增强型双模干涉仪。我们提供并研究了一个包含所有优化设计的低维超平面,以分析硅芯和包层折射率的变化。结果,报道了全介质单通道干涉仪作为仅33 µm占地面积的调制器以及灵敏度值为19.2×10 2πrad/RIU·cm的传感器,并通过两种不同的模拟方法进行了验证。这项工作通过考虑多个性能标准,实现了针对不同应用的慢光干涉仪的设计和优化,并且该方法可扩展到其他光子结构。

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