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基于可配置泵浦模式的低噪声系数和高纯度10涡旋模式放大器。

Low-noise-figure and high-purity 10 vortex modes amplifier based on configurable pump modes.

作者信息

Wu Yan, Wen Jianxiang, Zhang Mengdi, Wen Jing, Chen Wei, Zhang Xiaobei, Pang Fufei, Tang Fengzai, West Geoff, Wang Tingyun

出版信息

Opt Express. 2022 Feb 28;30(5):8248-8256. doi: 10.1364/OE.452410.

Abstract

We have explored an orbital angular momentum (OAM) amplifier of 10 vortex modes under different-order OAM pump modes, i.e. OAM, OAM, and OAM. The all-fiber amplification system consists of an active few-mode erbium-doped fiber (FM-EDF), a mode selective pump (MSP), and a mode selective signal (MSS). These mode selective components are based on fused-taper mode selective couplers (MSC) under different wavelengths fabricated by a passive ring-core fiber (RCF). Under different-order mode pumps, the OAM amplifier experimentally exhibits mode gains (MGs) above 15 dB for 10 vortex modes with the mode purities only 89%, essentially in line with the simulation results. Especially when the signal-mode profiles are better matched to the pump-mode profiles, i.e. the OAM pumps with the same order as signals, the obtained MGs are all over 20.2 dB and the amplified OAM mode purity is up to 97%; the acquired noise figures (NFs) are <4.9 dB and even the minimum NF is 3.2 dB. The results reveal that the OAM amplifier shows low-NF and high-purity characteristics under configurable pump modes in C-band. The amplified high-order OAM mode could be promising for uses in the long-distance mode division multiplexing (MDM) and in mitigation of the upcoming capacity crunch in optical fiber communication.

摘要

我们研究了一种在不同阶轨道角动量(OAM)泵浦模式下,即OAM、OAM和OAM,对10种涡旋模式的OAM放大器。全光纤放大系统由有源少模掺铒光纤(FM-EDF)、模式选择泵浦(MSP)和模式选择信号(MSS)组成。这些模式选择组件基于由无源环形芯光纤(RCF)在不同波长下制造的熔锥模式选择耦合器(MSC)。在不同阶模式泵浦下,该OAM放大器在实验上对10种涡旋模式展现出高于15 dB的模式增益(MG),模式纯度仅为89%,基本与模拟结果一致。特别是当信号模式轮廓与泵浦模式轮廓更好匹配时,即泵浦OAM与信号具有相同阶数时,获得的MG均超过20.2 dB,放大后的OAM模式纯度高达97%;获得的噪声系数(NF)<4.9 dB,甚至最小NF为3.2 dB。结果表明,该OAM放大器在C波段可配置泵浦模式下呈现出低NF和高纯度特性。放大后的高阶OAM模式有望用于长距离模式分复用(MDM)以及缓解即将到来的光纤通信容量危机。

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