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Spatial multiplexing for high capacity transport

机译:空间多路复用以实现大容量传输

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Spatial multiplexing provides a solution for fiber capacity increase beyond the limits foreseen for enhanced bandwidth efficiency by higher order modulation and more channels by additional wavelength bands in long haul optical transmission. Its adoption also offers potential for a reduction of the cost and energy per transmitted bit. Two fiber types have been identified as candidates for transmission of multiple signals at the same wavelength inside a single cladding: fibers with multiple single mode cores and single core multi-mode fibers. Major challenges arise from the coupling of signals along the transmission path. Multiple input/multiple output signal processing may provide a solution for the separation of signals at the end of the link. Concepts such as tapers in case of multi-core fibers and field transformation in case of single core multi-mode fibers exist to provide the spatial multiplexing and demultiplexing functions. The potential of spatial multiplexing for cost and energy efficiency can only be realized, if optical amplifiers are found which are capable of processing all channels simultaneously. Concepts for such amplifiers were analyzed with promising results. Direct pumping of the cores leads to acceptable power requirements of lumped erbium-doped as well as distributed Raman amplifiers.
机译:空间复用为光纤容量的增加提供了一种解决方案,该能力超出了在长距离光传输中通过更高阶的调制和通过附加波长带的更多信道来提高带宽效率所预期的限制。它的采用还具有降低每传输位的成本和能量的潜力。已经确定了两种光纤类型可以在单个包层内传输相同波长的多个信号:具有多个单模纤芯的光纤和具有单纤芯多模光纤的光纤。主要挑战来自沿传输路径的信号耦合。多输入/多输出信号处理可以为链路末端的信号分离提供解决方案。存在诸如多芯光纤情况下的锥度和单芯多模光纤情况下的场转换之类的概念以提供空间复用和解复用功能。如果找到了能够同时处理所有通道的光放大器,则只有在实现成本和能效方面的空间复用潜力。对此类放大器的概念进行了分析,结果令人满意。磁芯的直接抽运导致可接受的掺lum掺well以及分布式拉曼放大器的功率要求。

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