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用于支持稳健轨道角动量模式的掺锗环形芯光子晶体光纤。

GeO-doped ring-core photonic crystal fiber for supporting robust orbital angular momentum modes.

作者信息

Zhou Jingmin, Xie Shuyang, Nie Chen, Li Lin, Shan Zhengping, Liu Exian

出版信息

J Opt Soc Am A Opt Image Sci Vis. 2022 Oct 1;39(10):1913-1920. doi: 10.1364/JOSAA.471249.

Abstract

Orbital angular momentum (OAM)-mode-supported photonic crystal fibers (PCFs) have inspired intensive research in modern fiber optics due to the robust propagation and theoretically unlimited signal-carried channels. In this paper, a dual-cladding -doped ring-core PCF is designed, and a strategy for optimizing OAM mode properties is analyzed by structure parameters and -doping concentration. Numeric results show that high structural degrees of freedom are available to improve the effective refractive index separation (within the vector modes), chromatic dispersion, effective mode field area, nonlinear coefficient, and OAM mode purity in terms of inner cladding, outer cladding, and ring-core. In particular, the effective refractive index separation and chromatic dispersion can exhibit a high order magnitude of 10 and a low value in the broad band from 1.3 µm to 1.7 µm, respectively. In addition to structural optimization, doping high index material into the ring-core is another way to regulate the fiber performance by controlling the doping concentration. A systematic investigation shows that as the doping concentration increases, the effective refractive index separation and mode purity increase obviously, while the dispersion and mode field area gradually decrease. This flexible manipulation offers a method for customizing the optical properties of OAM-supported PCFs in communication and sensor systems.

摘要

轨道角动量(OAM)模式支持的光子晶体光纤(PCF)因其稳健的传播特性和理论上无限的信号承载通道,在现代光纤光学领域引发了广泛的研究。本文设计了一种双包层掺杂环形纤芯光子晶体光纤,并通过结构参数和掺杂浓度分析了优化OAM模式特性的策略。数值结果表明,从内包层、外包层和环形纤芯方面来看,在提高有效折射率分离(在矢量模式内)、色散、有效模场面积、非线性系数和OAM模式纯度方面,具有很高的结构自由度。特别是,有效折射率分离和色散在1.3 µm至1.7 µm的宽带内分别可呈现10的高阶量级和低值。除了结构优化外,通过控制掺杂浓度向环形纤芯中掺杂高折射率材料是调节光纤性能的另一种方法。系统研究表明,随着掺杂浓度的增加,有效折射率分离和模式纯度明显增加,而色散和模场面积逐渐减小。这种灵活的操控为在通信和传感器系统中定制OAM支持的光子晶体光纤的光学特性提供了一种方法。

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