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author:

Zhang, Lei (Zhang, Lei.) [1] | Gu, Xiaofei (Gu, Xiaofei.) [2] | Yu, Qianli (Yu, Qianli.) [3] | Guo, Zhenzhao (Guo, Zhenzhao.) [4] | Xiao, Jinbiao (Xiao, Jinbiao.) [5] | Wu, Shengbao (Wu, Shengbao.) [6]

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EI

Abstract:

Mode-division multiplexing (MDM) greatly enhances the capacity of on-chip photonic interconnects, yet traditional MDM techniques struggle with direct access to specific lower-order modes within multimode bus waveguides, limiting scalability and flexibility. In this paper, we introduce a compact and flexible MDM architecture featuring an engine that combines a grating-engineered backward mode converter (BMC) with a bidirectional asymmetric directional coupler (Bi-ADC). The BMC is precisely engineered to leverage the modal properties of the multimode bus waveguide, enabling efficient switching between two designated modes while minimizing crosstalk with other modes. The Bi-ADC operates analogously to a 2 × 2 coupler and integrates a single-mode access waveguide with the bus waveguide, allowing for independent routing of two modes through the access waveguide's ports. This approach provides a more compact design compared to conventional MDM techniques and facilitates the insertion of lower-order modes at arbitrary positions along the bus waveguide. Furthermore, this architecture can be combined with an optical switch to develop a bidirectional, dual-mode switchable add-drop mode multiplexer. To demonstrate its feasibility, we design two BMC-based engines for TE0-TE1 and TE0-TE2 mode conversions and assess their performance numerically as 4-mode/5-mode demultiplexers. Experimental results showcase a 4-channel mode demultiplexer (TE0, TE1, TE2, and TM0) based on the TE0-TE1 engine, achieving insertion losses (ILs) of 2.4 dB, 0.3 dB, 1.28 dB, and 0.75 dB at a wavelength of 1550 nm. The modal crosstalk is below -17.5 dB for all channels, with an IL © 1983-2012 IEEE.

Keyword:

Demultiplexing Directional couplers Fiber optic sensors Image sensors Laser accessories Photonic devices Photonic integrated circuits Photonic integration technology Solar power generation System-on-chip Thermal blooming

Community:

  • [ 1 ] [Zhang, Lei]Hebei University, Photonics Information Innovation Center, Hebei Provincial Center for Optical Sensing Innovations, College of Physics Science and Technology, Baoding; 071002, China
  • [ 2 ] [Gu, Xiaofei]Hebei University, College of Pharmaceutical Sciences, Baoding; 071002, China
  • [ 3 ] [Yu, Qianli]Hebei University, Photonics Information Innovation Center, Hebei Provincial Center for Optical Sensing Innovations, College of Physics Science and Technology, Baoding; 071002, China
  • [ 4 ] [Guo, Zhenzhao]Fuzhou University, Institute of Micro/Nano Devices and Solar Cells, School of Physics and Information Engineering, Fuzhou; 350108, China
  • [ 5 ] [Xiao, Jinbiao]Southeast University, National Research Center for Optical Sensing/ Communications Integrated Networking, Nanjing; 210096, China
  • [ 6 ] [Wu, Shengbao]Hebei University, Photonics Information Innovation Center, Hebei Provincial Center for Optical Sensing Innovations, College of Physics Science and Technology, Baoding; 071002, China

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Source :

Journal of Lightwave Technology

ISSN: 0733-8724

Year: 2025

Issue: 6

Volume: 43

Page: 2716-2724

4 . 1 0 0

JCR@2023

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ESI Highly Cited Papers on the List: 0 Unfold All

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Chinese Cited Count:

30 Days PV: 1

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