• Advanced Photonics
  • Vol. 5, Issue 5, 056008 (2023)
Yu He1, Xingfeng Li1, Yong Zhang1, Shaohua An1, Hongwei Wang1, Zhen Wang1, Haoshuo Chen2, Yetian Huang3, Hanzi Huang3, Nicolas K. Fontaine2, Roland Ryf2, Yuhan Du1, Lu Sun1, Xingchen Ji4, Xuhan Guo1, Yingxiong Song3, Qianwu Zhang3, and Yikai Su1、*
Author Affiliations
  • 1Shanghai Jiao Tong University, Department of Electronic Engineering, State Key Laboratory of Advanced Optical Communication Systems and Networks, Shanghai, China
  • 2Nokia Bell Labs, Murray Hill, New Jersey, United States
  • 3Shanghai University, Key Laboratory of Specialty Fiber Optics and Optical Access Networks, Joint International Research Laboratory of Specialty Fiber Optics and Advanced Communication, Shanghai, China
  • 4Shanghai Jiao Tong University, School of Electronic Information and Electrical Engineering, John Hopcroft Center for Computer Science, Shanghai, China
  • show less
    DOI: 10.1117/1.AP.5.5.056008 Cite this Article Set citation alerts
    Yu He, Xingfeng Li, Yong Zhang, Shaohua An, Hongwei Wang, Zhen Wang, Haoshuo Chen, Yetian Huang, Hanzi Huang, Nicolas K. Fontaine, Roland Ryf, Yuhan Du, Lu Sun, Xingchen Ji, Xuhan Guo, Yingxiong Song, Qianwu Zhang, Yikai Su. On-chip metamaterial-enabled high-order mode-division multiplexing[J]. Advanced Photonics, 2023, 5(5): 056008 Copy Citation Text show less

    Abstract

    Mode-division multiplexing (MDM) technology enables high-bandwidth data transmission using orthogonal waveguide modes to construct parallel data streams. However, few demonstrations have been realized for generating and supporting high-order modes, mainly due to the intrinsic large material group-velocity dispersion (GVD), which make it challenging to selectively couple different-order spatial modes. We show the feasibility of on-chip GVD engineering by introducing a gradient-index metamaterial structure, which enables a robust and fully scalable MDM process. We demonstrate a record-high-order MDM device that supports TE0–TE15 modes simultaneously. 40-GBaud 16-ary quadrature amplitude modulation signals encoded on 16 mode channels contribute to a 2.162 Tbit / s net data rate, which is the highest data rate ever reported for an on-chip single-wavelength transmission. Our method can effectively expand the number of channels provided by MDM technology and promote the emerging research fields with great demand for parallelism, such as high-capacity optical interconnects, high-dimensional quantum communications, and large-scale neural networks.
    Supplementary Materials
    Yu He, Xingfeng Li, Yong Zhang, Shaohua An, Hongwei Wang, Zhen Wang, Haoshuo Chen, Yetian Huang, Hanzi Huang, Nicolas K. Fontaine, Roland Ryf, Yuhan Du, Lu Sun, Xingchen Ji, Xuhan Guo, Yingxiong Song, Qianwu Zhang, Yikai Su. On-chip metamaterial-enabled high-order mode-division multiplexing[J]. Advanced Photonics, 2023, 5(5): 056008
    Download Citation