Simulating the effects of refractive index difference on the coupling efficiency of periodically segmented waveguide mode converter

IF 0.7 4区 物理与天体物理 Q4 OPTICS
Optica Applicata Pub Date : 2021-01-01 DOI:10.37190/oa210408
Yu Zheng, Hao He, Lianqiong Jiang, Ji’an Duan
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引用次数: 0

Abstract

Efficient coupling of micro/nano-optical waveguides with single-mode fibers is the premise for the efficient operation of the integrated photonic chip, which directly determines its optical performance. In this paper, the design principles of periodically segmented waveguide (PSW) structure used for high-efficiency fiber-chip coupling are proposed, and the effects of refractive index difference Δ on coupling efficiency and structural parameters are studied by simulation. It is found that as the Δ of the PSW increases, the period of the PSW tends to be smaller, and the coupling efficiency decreases continuously, reduced by around 0.673 dB in the range of Δ = 3% to Δ = 7%. Through the analysis of PSW optical mechanisms, it demonstrates that the main reason for the decrease of coupling efficiency is that the transmission loss of the tapered section increases sharply with the increase of Δ. High-Δ PSW is difficult to apply to highly integrated silica optical chips due to the unignorably insertion loss.
模拟折射率差对周期性分段波导模式变换器耦合效率的影响
微纳光波导与单模光纤的高效耦合是集成光子芯片高效工作的前提,直接决定了集成光子芯片的光学性能。本文提出了用于光纤芯片高效耦合的周期分段波导(PSW)结构设计原则,并通过仿真研究了折射率差Δ对耦合效率和结构参数的影响。研究发现,随着PSW Δ的增大,PSW的周期逐渐变小,耦合效率不断降低,在Δ = 3% ~ Δ = 7%范围内,耦合效率降低了0.673 dB左右。通过对PSW光学机理的分析,表明耦合效率降低的主要原因是随着Δ的增大,锥形截面的传输损耗急剧增加。由于不可忽视的插入损耗,高-Δ PSW难以应用于高集成度的硅光芯片。
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来源期刊
Optica Applicata
Optica Applicata 物理-光学
CiteScore
1.00
自引率
16.70%
发文量
21
审稿时长
4 months
期刊介绍: Acoustooptics, atmospheric and ocean optics, atomic and molecular optics, coherence and statistical optics, biooptics, colorimetry, diffraction and gratings, ellipsometry and polarimetry, fiber optics and optical communication, Fourier optics, holography, integrated optics, lasers and their applications, light detectors, light and electron beams, light sources, liquid crystals, medical optics, metamaterials, microoptics, nonlinear optics, optical and electron microscopy, optical computing, optical design and fabrication, optical imaging, optical instrumentation, optical materials, optical measurements, optical modulation, optical properties of solids and thin films, optical sensing, optical systems and their elements, optical trapping, optometry, photoelasticity, photonic crystals, photonic crystal fibers, photonic devices, physical optics, quantum optics, slow and fast light, spectroscopy, storage and processing of optical information, ultrafast optics.
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