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基于耦合波导中磁光微扰的集成TE光隔离器。

Integrated TE optical isolator based on magneto-optical perturbation in coupled waveguides.

作者信息

Chao Kimhong, Yam Vy, Vivien Laurent, Dagens Béatrice

机构信息

Centre de Nanosciences et de Nanotechnologies, CNRS, Université Paris-Saclay, 91120, Palaiseau, France.

出版信息

Sci Rep. 2025 Jul 1;15(1):20381. doi: 10.1038/s41598-025-08507-z.

Abstract

Photonic integrated circuits (PICs) increasingly require more advanced integrated functionalities and devices to meet the key application challenges. This evolution with the serial integration of optical functions in the same photonic circuit often results in internal reflections and optical feedback, which can specifically destabilize lasers. One solution to overcome this issue is to integrate an optical isolator at the output of the lasers. Among various proposed designs, magneto-optical-based isolators have significantly improved over the past decades in terms of compactness, insertion loss, isolation ratio, and spectral isolation bandwidth. Despite these improvements, the TE optical isolator still lacks performance. This paper introduces a new operational principle for a TE optical isolator based on modal beating in a transverse magneto-optical Kerr effect (TMOKE) coupled-waveguide system. This approach combines evanescent-coupled silicon waveguides and the magneto-optical effect, resulting in a nonreciprocal propagation that can be optimized for optical isolation. This new concept shows promise in achieving a high-performing TE optical isolator, as it does not depend on resonance and is free from constraints associated with interferometers. Based on data from magneto-optical garnet materials, the simulated device has a length of 500 [Formula: see text] and its 20 dB-isolation bandwidth is as high as 35 nm. With broadband and high isolation, this simulated device opens possibilities for miniaturizing complex photonic circuits used in optical communication, data communication, and optical sensing.

摘要

光子集成电路(PIC)越来越需要更先进的集成功能和器件,以应对关键应用挑战。随着光功能在同一光子电路中的串行集成,这种发展往往会导致内部反射和光反馈,这可能会使激光器特别不稳定。克服这个问题的一种解决方案是在激光器输出端集成一个光隔离器。在各种提出的设计中,基于磁光的隔离器在过去几十年中在紧凑性、插入损耗、隔离比和光谱隔离带宽方面有了显著改进。尽管有这些改进,TE光隔离器仍然缺乏性能。本文介绍了一种基于横向磁光克尔效应(TMOKE)耦合波导系统中的模式拍频的TE光隔离器的新工作原理。这种方法结合了倏逝耦合硅波导和磁光效应,产生了一种可以针对光隔离进行优化的非互易传播。这个新概念在实现高性能TE光隔离器方面显示出前景,因为它不依赖于共振,并且不受与干涉仪相关的限制。基于磁光石榴石材料的数据,模拟器件的长度为500 [公式:见正文],其20 dB隔离带宽高达35 nm。凭借宽带和高隔离度,这个模拟器件为光通信、数据通信和光学传感中使用的复杂光子电路的小型化开辟了可能性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8e3c/12216580/a861295b1314/41598_2025_8507_Fig1_HTML.jpg

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