E 波段电信兼容型 40 dB 增益大功率掺铋光纤放大器,功率转换效率创历史新高

IF 5.4 1区 物理与天体物理 Q1 OPTICS APL Photonics Pub Date : 2024-04-02 DOI:10.1063/5.0187069
Aleksandr Donodin, Egor Manuylovich, Vladislav Dvoyrin, Mikhail Melkumov, Valery Mashinsky, Sergei Turitsyn
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引用次数: 0

摘要

多波段传输是在不改变现有庞大光纤基础的情况下,满足对光通信网络容量不断增长的需求的关键实用解决方案之一。然而,超宽带通信需要开发工作在 C 波段和 L 波段之外的新型高能效光放大器,这是一项重大的研究和技术挑战,其意义堪比掺铒光纤放大器的问世,后者极大地改变了光通信领域。有几种工作在 C 波段和 L 波段以外的光纤可用于开发此类放大器,特别是掺杂钕、掺杂镨、掺杂铥和掺杂铋的光纤。然而,在这些光纤中,掺铒光纤作为最有前途的放大介质特别引人关注,因为与其他光纤不同,不同的掺铒活性中心可以放大总宽度为 700 纳米(1100-1800 纳米)的巨大波段。使用不同的宿主材料,如硅酸铝、磷硅酸盐、二氧化硅和锗硅酸盐玻璃,可以获得这样的光谱覆盖范围。在此,我们报告了一种新型掺铋光纤放大器,它具有创纪录的 E 波段放大特性,包括迄今为止所报告的电信兼容 E 波段放大器中最高的功率转换效率。这种掺铋光纤放大器(BDFA)的最大增益为 39.8 dB,最小噪声系数为 4.6 dB,掺铋光纤长度为 173 m。实现的最大功率转换效率为 38%,高于 L 波段掺铒光纤放大器。这一性能表明,BDFA 极有可能成为现代多波段光通信网络中的首选放大器。
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E-band telecom-compatible 40 dB gain high-power bismuth-doped fiber amplifier with record power conversion efficiency
Multi-band transmission is one of the key practical solutions to cope with the continuously growing demand on the capacity of optical communication networks without changing the huge existing fiber base. However, ultra-broadband communication requires the development of novel power efficient optical amplifiers operating beyond C- and L-bands, and this is a major research and technical challenge comparable to the introduction of the seminal erbium-doped fiber amplifiers that dramatically changed the optical communication sector. There are several types of optical fibers operating beyond C- and L-bands that can be used for the development of such amplifiers, specifically the fibers doped with neodymium, praseodymium, thulium, and bismuth. However, among these, Bi-doped fibers are of special interest as the most promising amplification medium because, unlike the others, different Bi-associated active centers allow amplification in an enormous band of overall width of 700 nm (1100–1800 nm). Such spectral coverage can be obtained by using different host materials, such as aluminosilicate, phosphosilicate, silica, and germanosilicate glasses. Here, we report a novel Bi-doped fiber amplifier with record characteristics for E-band amplification, including the highest power conversion efficiency among telecom-compatible E-band amplifiers reported to date. This bismuth-doped fiber amplifier (BDFA) features a maximum gain of 39.8 dB and a minimal noise figure of 4.6 dB enabled by 173 m Bi-doped fiber length. The maximum achieved power conversion efficiency of 38% is higher than that of L-band Er-doped fiber amplifiers. This performance demonstrates the high potential of BDFA for becoming the amplifier of choice in modern multi-band optical communication networks.
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来源期刊
APL Photonics
APL Photonics Physics and Astronomy-Atomic and Molecular Physics, and Optics
CiteScore
10.30
自引率
3.60%
发文量
107
审稿时长
19 weeks
期刊介绍: APL Photonics is the new dedicated home for open access multidisciplinary research from and for the photonics community. The journal publishes fundamental and applied results that significantly advance the knowledge in photonics across physics, chemistry, biology and materials science.
期刊最新文献
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