概括
这项研究展示了一个统一的C + L频段密集波长分割多重复合 (DWDM) 系统,简化了光学放大器并实现了62.1 Tb/s的传输. 这一突破使得高容量,高光谱效率的光学网络成为可能.
科学领域:
- 光学通信是指光学通信.
- 摄影工程工程 摄影工程
- 电信技术 电信技术 电信技术
背景情况:
- 以前的C + L频段系统需要单独的光学放大器,增加复杂性和成本.
- 一个统一的架构简化了密集波长分割多重复合 (DWDM) 系统.
- 整合C和L频段的组件对于未来的高容量网络至关重要.
研究的目的:
- 展示使用统一的C+L频段架构的实时DWDM传输系统.
- 为了克服以前的C + L频段系统中单独的光学放大器的局限性.
- 展示简化,高容量的光传输网络.
主要方法:
- 开发并集成了收发器模块,波长选择开关 (WSS) 和分布式拉曼放大器 (DRA),用于整个C + L频段.
- 采用了一种具有100nm增益带宽的-联合合纤维放大器 (EBDFA).
- 使用了70个WDM频道,每个频道的速率高达1 Tb/s,超过80公里的G.652.D光纤.
主要成果:
- 实现了62.1 Tb/s的总传输能力.
- 在统一的C+L频段展示了无的87nm光学光谱.
- 展示了一个简化的系统,具有统一的C + L频段兼容组件.
结论:
- 统一的C + L频段光学对于高容量的光学传输网络是可行的.
- 展示的系统提供了光谱效率高和简化的光学传输.
- 这种架构为下一代电信基础设施铺平了道路.
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