4.7 Article

Compact and high-performance vortex mode sorter for multi-dimensional multiplexed fiber communication systems

期刊

OPTICA
卷 7, 期 3, 页码 254-262

出版社

OPTICAL SOC AMER
DOI: 10.1364/OPTICA.385590

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资金

  1. National Key R&D Program of China [2018YFB1801803, 2019YFA0706302]
  2. National Natural Science Foundation of China [U1701661, 11774437, 61975243, 61490715]
  3. Local Innovative and Research Teams Project of Guangdong Pearl River Talents Program [2017BT01X121]
  4. Science and Technology Program of Guangzhou [201804010302]
  5. European Union H2020 project ROAM

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With the amplitude, time, wavelength/frequency, phase, and polarization/spin parameter dimensions of the light wave/photon almost fully utilized in both classical and quantum photonic information systems, orbital angular momentum (OAM) carried by optical vortex modes is regarded as a new modal parameter dimension for further boosting the capacity and performance of the systems. To exploit the OAM mode space for such systems, stringent performance requirements on a pair of OAM mode multiplexer and demultiplexer (also known as mode sorters) must be met. In this work, we implement a newly discovered optical spiral transformation to achieve a low-cross-talk, wide-optical-bandwidth, polarization-insensitive, compact, and robust OAM mode sorter that realizes the desired bidirectional conversion between seven co-axial OAM modes carried by a ring-core fiber and seven linearly displaced Gaussian-like modes in parallel single-mode fiber channels. We further apply the device to successfully demonstrate high-spectral-efficiency and high-capacity data transmission in a 50-km OAM fiber communication link for the first time, in which a multi-dimensional multiplexing scheme multiplexes eight orbital-spin vortex mode channels with each mode channel simultaneously carrying 10 wavelength-division multiplexing channels, demonstrating the promising potential of both the OAM mode sorter and the multi-dimensional multiplexed OAM fiber systems enabled by the device. Our results pave the way for future OAM-based multi-dimensional communication systems. (c) 2020 Optical Society of America under the terms of the OSA Open Access Publishing Agreement

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