Multiple-Ring-Core FM-EDF for Weakly-Coupled MDM Amplification With Low Differential Modal Gain

Recently weakly-coupled mode-division multiplexing (MDM) transmission systems and networks based on ultralow-modal-crosstalk few-mode fiber (FMF) have attracted much interest, for which optical amplification technologies with low modal crosstalk and two-dimension mode-wavelength gain flattening are...

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Main Authors: Jinglong Zhu, Mingqing Zuo, Yu Yang, Dawei Ge, Lei Shen, Zhangyuan Chen, Yongqi He, Juhao Li
Format: Article
Language:English
Published: IEEE 2021-01-01
Series:IEEE Photonics Journal
Subjects:
Online Access:https://ieeexplore.ieee.org/document/9321358/
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spelling doaj-824f10d9f8fe499492fa47b241c69ebe2021-03-29T18:06:44ZengIEEEIEEE Photonics Journal1943-06552021-01-0113111110.1109/JPHOT.2021.30514559321358Multiple-Ring-Core FM-EDF for Weakly-Coupled MDM Amplification With Low Differential Modal GainJinglong Zhu0https://orcid.org/0000-0001-9560-8630Mingqing Zuo1Yu Yang2https://orcid.org/0000-0002-4324-7754Dawei Ge3Lei Shen4Zhangyuan Chen5https://orcid.org/0000-0001-7049-2379Yongqi He6Juhao Li7https://orcid.org/0000-0002-4913-6844State Key Laboratory of Advanced Optical Communication Systems and Networks, Peking University, Beijing, ChinaState Key Laboratory of Advanced Optical Communication Systems and Networks, Peking University, Beijing, ChinaState Key Laboratory of Advanced Optical Communication Systems and Networks, Peking University, Beijing, ChinaThe Department of Network and IT Technology, China Mobile Research Institute, Beijing, ChinaState Key Laboratory of Optical Fiber and Cable Manufacture Technology, Yangtze Optical Fiber and Cable Joint Stock Limited Company, Wuhan, ChinaState Key Laboratory of Advanced Optical Communication Systems and Networks, Peking University, Beijing, ChinaState Key Laboratory of Advanced Optical Communication Systems and Networks, Peking University, Beijing, ChinaState Key Laboratory of Advanced Optical Communication Systems and Networks, Peking University, Beijing, ChinaRecently weakly-coupled mode-division multiplexing (MDM) transmission systems and networks based on ultralow-modal-crosstalk few-mode fiber (FMF) have attracted much interest, for which optical amplification technologies with low modal crosstalk and two-dimension mode-wavelength gain flattening are highly desired. In this paper, we propose for the first time a design method for few-mode Erbium-doped fiber (FM-EDF) with multi-ring-core (MRC) structures of both index and Erbium doping, which has high compatibility with the transmission MRC-FMF and low differential modal gain (DMG) with simple pump injection requirement. By sharing the boundaries of ring areas for both index and Erbium doping, the design method also helps to reduce the complexity of preform fabrication. We show by simulation that at 1550-nm signal wavelength, a 6-mode MRC-EDF can achieve a minimum DMG of 0.35-dB with only LP<sub>11</sub> pump light injection and a 10-mode MRC-EDF can achieve a minimum DMG of 0.60-dB with LP<sub>01</sub> and LP<sub>03</sub> pump lights injection. Besides, the tolerance of DMG to the variation of fiber parameters induced by fabrication is analyzed. The proposed FM-EDF is beneficial for the practical applications of weakly-coupled MDM transmission systems and networks.https://ieeexplore.ieee.org/document/9321358/Mode-division multiplexingfew-mode Erbium-doped fiber amplifierweak coupling
collection DOAJ
language English
format Article
sources DOAJ
author Jinglong Zhu
Mingqing Zuo
Yu Yang
Dawei Ge
Lei Shen
Zhangyuan Chen
Yongqi He
Juhao Li
spellingShingle Jinglong Zhu
Mingqing Zuo
Yu Yang
Dawei Ge
Lei Shen
Zhangyuan Chen
Yongqi He
Juhao Li
Multiple-Ring-Core FM-EDF for Weakly-Coupled MDM Amplification With Low Differential Modal Gain
IEEE Photonics Journal
Mode-division multiplexing
few-mode Erbium-doped fiber amplifier
weak coupling
author_facet Jinglong Zhu
Mingqing Zuo
Yu Yang
Dawei Ge
Lei Shen
Zhangyuan Chen
Yongqi He
Juhao Li
author_sort Jinglong Zhu
title Multiple-Ring-Core FM-EDF for Weakly-Coupled MDM Amplification With Low Differential Modal Gain
title_short Multiple-Ring-Core FM-EDF for Weakly-Coupled MDM Amplification With Low Differential Modal Gain
title_full Multiple-Ring-Core FM-EDF for Weakly-Coupled MDM Amplification With Low Differential Modal Gain
title_fullStr Multiple-Ring-Core FM-EDF for Weakly-Coupled MDM Amplification With Low Differential Modal Gain
title_full_unstemmed Multiple-Ring-Core FM-EDF for Weakly-Coupled MDM Amplification With Low Differential Modal Gain
title_sort multiple-ring-core fm-edf for weakly-coupled mdm amplification with low differential modal gain
publisher IEEE
series IEEE Photonics Journal
issn 1943-0655
publishDate 2021-01-01
description Recently weakly-coupled mode-division multiplexing (MDM) transmission systems and networks based on ultralow-modal-crosstalk few-mode fiber (FMF) have attracted much interest, for which optical amplification technologies with low modal crosstalk and two-dimension mode-wavelength gain flattening are highly desired. In this paper, we propose for the first time a design method for few-mode Erbium-doped fiber (FM-EDF) with multi-ring-core (MRC) structures of both index and Erbium doping, which has high compatibility with the transmission MRC-FMF and low differential modal gain (DMG) with simple pump injection requirement. By sharing the boundaries of ring areas for both index and Erbium doping, the design method also helps to reduce the complexity of preform fabrication. We show by simulation that at 1550-nm signal wavelength, a 6-mode MRC-EDF can achieve a minimum DMG of 0.35-dB with only LP<sub>11</sub> pump light injection and a 10-mode MRC-EDF can achieve a minimum DMG of 0.60-dB with LP<sub>01</sub> and LP<sub>03</sub> pump lights injection. Besides, the tolerance of DMG to the variation of fiber parameters induced by fabrication is analyzed. The proposed FM-EDF is beneficial for the practical applications of weakly-coupled MDM transmission systems and networks.
topic Mode-division multiplexing
few-mode Erbium-doped fiber amplifier
weak coupling
url https://ieeexplore.ieee.org/document/9321358/
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