The Institute for Photonics and Advanced Sensing (IPAS) and School of Physical Sciences, The University of Adelaide, Adelaide, Australia.
School of Engineering, University of South Australia, Mawson Lakes, Australia.
Sci Rep. 2017 Aug 1;7(1):6971. doi: 10.1038/s41598-017-06561-w.
With the capacity limits of standard single-mode optical fiber fast approaching, new technologies such as space-division multiplexing are required to avoid an Internet capacity crunch. Few-mode multicore fiber (FM-MCF) could allow for a two orders of magnitude increase in capacity by using the individual spatial modes in the different cores as unique data channels. We report the realization of a monolithic mode-selective few-mode multicore fiber multiplexer capable of addressing the individual modes of such a fiber. These compact multiplexers operate across the S + C + L telecommunications bands and were inscribed into a photonic chip using ultrafast laser inscription. They allow for the simultaneous multiplexing of the LP, LP and LP modes of all cores in a 3-mode, 4-core fiber with excellent mode extinction ratios and low insertion losses. The devices are scalable to more modes and cores and therefore could represent an enabling technology for practical ultra-high capacity dense space-division multiplexing.
随着标准单模光纤的容量限制快速逼近,需要采用诸如空分复用等新技术来避免互联网容量危机。少模多芯光纤(FM-MCF)可以通过将不同芯中的各个空间模式用作独特的数据通道,使容量增加两个数量级。我们报告了一种单片模式选择型少模多芯光纤复用器的实现,该复用器能够对这种光纤的各个模式进行寻址。这些紧凑型复用器在 S+C+L 电信波段内运行,并使用超快激光写入技术在光子芯片上进行写入。它们能够以优异的模式消光比和低插入损耗同时复用 3 模 4 芯光纤中所有芯的 LP、LP 和 LP 模式。这些器件可扩展到更多模式和芯数,因此可能是实现实际超高容量密集空分复用的一项使能技术。