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一种基于使用条形波导结构的氮化硅多模干涉仪的光学1×4功率分配器。

An Optical 1×4 Power Splitter Based on Silicon-Nitride MMI Using Strip Waveguide Structures.

作者信息

Frishman Aviv, Malka Dror

机构信息

Faculty of Engineering, Holon Institute of Technology (HIT), Holon 5810201, Israel.

出版信息

Nanomaterials (Basel). 2023 Jul 15;13(14):2077. doi: 10.3390/nano13142077.

DOI:10.3390/nano13142077
PMID:37513088
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC10383915/
Abstract

This paper presents a new design for a 1 × 4 optical power splitter using multimode interference (MMI) coupler in silicon nitride (SiN) strip waveguide structures. The main functionality of the proposed design is to use SiN for dealing with the back reflection (BR) effect that usually happens in silicon (Si) MMI devices due to the self-imaging effect and the higher index contrast between Si and silicon dioxide (SiO). The optimal device parameters were determined through numerical optimizations using the beam propagation method (BPM) and finite difference time domain (FDTD). Results demonstrate that the power splitter with a length of 34.6 μm can reach equal distribution power in each output port up to 24.3% of the total power across the O-band spectrum with 0.13 dB insertion loss and good tolerance MMI coupler parameters with a shift of ±250 nm. Additionally, the back reflection range over the O-band was found to be 40.25-42.44 dB. This demonstrates the effectiveness of the incorporation using SiN MMI and adiabatic input and output tapers in mitigating unwanted BR to ensure that a good signal is received from the laser. This design showcases the significant potential for data-center networks, offering a promising solution for efficient signal distribution and facilitating high-performance and reliable optical signal routing within the O-band range. By leveraging the advantages of SiN and the MMI coupler, this design opens possibilities for advanced optical network architectures and enables efficient transmission of optical signals in the O-band range.

摘要

本文提出了一种采用氮化硅(SiN)条形波导结构中的多模干涉(MMI)耦合器的新型1×4光功率分配器设计。所提出设计的主要功能是利用SiN来处理由于自成像效应以及Si与二氧化硅(SiO₂)之间较高的折射率对比度而通常在硅(Si)MMI器件中出现的背反射(BR)效应。通过使用光束传播法(BPM)和时域有限差分法(FDTD)进行数值优化,确定了最佳器件参数。结果表明,长度为34.6μm的功率分配器在O波段频谱上每个输出端口的功率分配可达到总功率的24.3%,插入损耗为0.13dB,并且在MMI耦合器参数偏移±250nm时具有良好的容差。此外,发现O波段上的背反射范围为40.25 - 42.44dB。这证明了采用SiN MMI以及绝热输入和输出渐变在减轻有害BR以确保从激光器接收到良好信号方面的有效性。该设计展示了在数据中心网络中的巨大潜力,为O波段范围内的高效信号分配提供了一个有前景的解决方案,并促进了高性能和可靠的光信号路由。通过利用SiN和MMI耦合器的优势,该设计为先进的光网络架构开辟了可能性,并实现了O波段范围内光信号的高效传输。

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引用本文的文献

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本文引用的文献

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A Compact Polarization MMI Combiner Using Silicon Slot-Waveguide Structures.一种采用硅槽波导结构的紧凑型偏振多模干涉耦合器。
Micromachines (Basel). 2023 Jun 6;14(6):1203. doi: 10.3390/mi14061203.
2
Combining Four Gaussian Lasers Using Silicon Nitride MMI Slot Waveguide Structure.利用氮化硅多模干涉(MMI)槽波导结构组合四个高斯激光
Micromachines (Basel). 2022 Oct 6;13(10):1680. doi: 10.3390/mi13101680.
3
1 × 4 Wavelength Demultiplexer C-Band Using Cascaded Multimode Interference on SiN Buried Waveguide Structure.基于氮化硅掩埋波导结构采用级联多模干涉的1×4波长解复用器C波段
Materials (Basel). 2022 Jul 21;15(14):5067. doi: 10.3390/ma15145067.
4
High-performance lasers for fully integrated silicon nitride photonics.用于全集成氮化硅光子学的高性能激光器。
Nat Commun. 2021 Nov 17;12(1):6650. doi: 10.1038/s41467-021-26804-9.
5
A Three Demultiplexer C-Band Using Angled Multimode Interference in GaN-SiO Slot Waveguide Structures.一种在氮化镓-二氧化硅槽型波导结构中利用倾斜多模干涉的三解复用器C波段。
Nanomaterials (Basel). 2020 Nov 25;10(12):2338. doi: 10.3390/nano10122338.
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An Eight-Channel C-Band Demux Based on Multicore Photonic Crystal Fiber.一种基于多芯光子晶体光纤的八通道C波段解复用器。
Nanomaterials (Basel). 2018 Oct 17;8(10):845. doi: 10.3390/nano8100845.
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N-rich silicon nitride angled MMI for coarse wavelength division (de)multiplexing in the O-band.用于O波段粗波分复用的富氮氮化硅倾斜多模干涉器。
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Silicon nitride O-band (de)multiplexers with low thermal sensitivity.具有低热灵敏度的氮化硅O波段(解)复用器。
Opt Express. 2017 May 29;25(11):12260-12267. doi: 10.1364/OE.25.012260.
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A Photonic 1 × 4 Power Splitter Based on Multimode Interference in Silicon-Gallium-Nitride Slot Waveguide Structures.一种基于硅-氮化镓槽波导结构中多模干涉的光子1×4功率分配器。
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10
Optical detection of target molecule induced aggregation of nanoparticles by means of high-Q resonators.利用高Q谐振器对目标分子诱导的纳米颗粒聚集进行光学检测。
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