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Ultra-High-Capacity Optical Communications and Networking: Advanced Raman Gain for Next Generation Networks

Ultra-High-Capacity Optical Communications and Networking: Advanced Raman Gain for Next Generation Networks
超高容量光通信和网络:下一代网络的高级拉曼增益
批准号:
0123484
负责人:
George Stegeman
金额:
$51.0万
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2001
资助国家:
美国
项目状态:
已结题
起止时间:
2001-10-01 至 2005-12-31

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中文摘要
翻译
0123484 Stegeman本提案是应NSF 01-65“超高容量光通信和网络”的要求提交的。“在短距离和长距离网络中,对通信信道的需求不断增长,这就需要扩大硅基光纤损耗最小值附近的可用光谱区域。在1400 nm处的“水”吸收峰的急剧减少打开了从1270到1650 nm的可用通信窗口,对应于约50 THz。如此大的带宽排除了现有的掺铒光纤和半导体激光器,留下拉曼增益作为主要的放大机制。然而,石英光纤中的拉曼带宽仅为10 THz,并且石英玻璃中的增益系数很小。作为一种解决方案,PI建议研究通过拉曼增益用于本地网络、中间距离网络和长途光纤传输的信号放大的新材料。新的拉曼增益介质将被认为是散装和光纤形式,第一个局域网和专门的应用,第二个更长的距离传输。新的玻璃,分子和聚合物材料将被制造,并通过自发拉曼散射,拉曼增益测量表征。以及光纤网络环境中的拉曼增益材料的评估。其中的一部分将被制成光纤,并在网络场景中评估拉曼增益。PI建议探索新类别的氧化物和非氧化物玻璃,以优化结构-性能关系,从而获得最佳的拉曼增益性能。这些将包括具有不同As、S和Se含量的硫属化物玻璃,以及重金属卤化物,例如“TeX”玻璃。感兴趣的氧化物玻璃是磷酸盐、重金属氧化物和硼磷酸盐,它们表现出光谱宽的拉曼谱带。将检查各种有机物质,主要是聚合物形式。有机介质中官能团的多样性可以覆盖完全期望的50 THz带宽,以及更多,用于拉曼增益。将制备聚合物共混物和复合材料,其含有覆盖该光谱范围的专门设计的分子,并测量其拉曼信号强度。感兴趣的家族将包括聚噻吩和先前已经显示出强拉曼散射的相关聚合物。还将研究具有高的热稳定性和光化学稳定性的发色团的芴基家族。无机和有机组分可以以几乎任何比例组合,以获得在其组成、加工特性和性能方面极其通用的混合溶胶-凝胶纳米复合材料。因此,通过明智地选择有机组分,可以实现特定的光学性质,例如扩展的拉曼带宽和增益系数。
英文摘要
0123484 StegemanThis proposal was submitted in response to the solicitation NSF 01-65 on "Ultra-High Capacity Optical Communications and Networking." The continuously growing demand for communications channels in short and long distance networks necessitates an expansion of the available spectral region near the loss minimum of silica-based fibers. Dramatic reduction of the "water" absorption peak at 1400 nm opened up the available communications window from 1270 to 1650 nm, corresponding to about 50 THz. Such a large bandwidth rules out existing erbium doped fibers and semiconductor lasers leaving Raman gain as the prime amplification mechanism. However, the Raman bandwidth in silica fibers is only 10 THz, and gain coefficients in silica glass are small. As a solution the PIs propose to investigate new materials for signal amplification by Raman gain for local networks, intermediate distance networks and long-haul fiber transmission. New Raman gain media will be considered in both bulk and fiber form, the first for local area networks and specialized applications, and the second for longer distance transmission.New glass, molecular and polymeric materials will be fabricated, and characterized by spontaneous Raman scattering, Raman gain measurements. and the evaluation of the Raman gain materials in a fiber network environment. A selection of those will be fabricated into fibers and the Raman gain evaluated in network scenarios. The PIs propose to explore new classes of oxide and non-oxide glasses to optimize the structure-property relations that give the best properties for Raman gain. These will include chalcogenide glasses with varying As, S, and Se content, and heavy metal halides such as the "TeX" glasses. Oxide glasses of interest are phosphates, heavy metal oxides, and borophosphates which exhibit spectrally broad Raman bands. A variety of organic species will be examined, mostly in polymer form. The diversity of functional groups in organic media can cover the fully desired 50 THz bandwidth, and more, for Raman gain. Polymer blends and composites will be prepared that contain specifically designed molecules that cover this spectral range and their Raman signal strength measured. Families of interest will include polythiophenes and related polymers that have previously shown strong Raman scattering. Also investigated will be the fluorenyl family of chromophores which possess high thermal and photochemical stability. Inorganic and organic components can be combined in virtually any ratio to obtain hybrid sol-gel nano-composites extremely versatile in their composition, processing characteristics, and properties. Thus through judicious selection of the organic component, particular optical properties can be realized such as extended Raman bandwidth and gain coefficient.
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