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Randomly-Coupled Multi-Core Fiber Technology

delete2022-11-01
delete25
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OA
AI
T
Tetsuya Hayashi *
T
Taiji Sakamoto
Y
Yusuke Yamada
R
Roland Ryf
R
René-Jean Essiambre
N
Nicolas K. Fontaine
M
Mikael Mazur
H
Haoshuo Chen
T
Takemi Hasegawa
DOI:10.1109/JPROC.2022.3182049delete
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Abstract

Abstract

En 中文
Randomly-coupled multi-core fiber (MCF) technology has come to attract lots of attention because of its strong applicability to long-haul transmission systems. Compared with weakly-coupled MCFs with independent cores, it can simultaneously realize higher spatial channel density and ultralow transmission loss using existing ultralow-loss single-mode fiber (SMF) core designs. The strong mode coupling characteristics of randomly-coupled MCFs can provide favorable optical properties, such as suppressed accumulation of modal dispersion (MD), mode-dependent loss (MDL), and nonlinear impairments. This article gives an overview of randomly-coupled MCF technology advancements. First, we describe the classification and design of randomly-coupled MCFs and explain what the randomly-coupled MCFs are and how they are designed. State-of-the-art randomly-coupled MCFs can accommodate four, seven, or 12 cores in a standard 125- mu m cladding while achieving ultralow transmission loss and/or small MD, which are very promising for long-haul transmission media. Next, we present the methods to characterize the optical properties of randomly-coupled MCFs and the difference compared to conventional SMF measurements. We also show the low-loss low-MDL connectivity of this type of MCF and the cabling that can suppress MD. A field-deployed randomly-coupled MCF cable testbed is also presented, which confirmed the favorable optical properties of randomly-coupled MCFs after deployment. Then, multi-core amplifier technologies are briefly summarized, and finally, we discuss the performance improvements in the transmissions over randomly-coupled MCFs and suitable application areas.
Keywords:
Erbium-doped fiber amplifiers (EDFAs)
optical fiber communication
optical fibers
space-division multiplexing (SDM)

Journal

Proceedings of the IEEE cover
Proceedings of the IEEE
IF:
25.9
Papers:
9.9K
Citations:
4.5W

Organization

S
sumitomo electric industries
Scholars:
351
Papers: 268
Citations: 0
N
nokia corporation
Scholars:
1.8K
Papers: 1.5K
Citations: 1