• Acta Optica Sinica
  • Vol. 44, Issue 19, 1913001 (2024)
Lijie Zhang1, Yanjing Fan2, Jingjing Hu2, Yuxuan Cheng1, and Yiying Gu1,*
Author Affiliations
  • 1School of Optoelectronic Engineering and Instrumentation Science, Dalian University of Technology,Dalian 116024, Liaoning , China
  • 2School of Physics, Dalian University of Technology, Dalian 116024, Liaoning , China
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    DOI: 10.3788/AOS240813 Cite this Article Set citation alerts
    Lijie Zhang, Yanjing Fan, Jingjing Hu, Yuxuan Cheng, Yiying Gu. Edge Coupler in Silicon Photonics Based on Cross-Type Heterogeneous Multi-Core Waveguide[J]. Acta Optica Sinica, 2024, 44(19): 1913001 Copy Citation Text show less
    Structural diagrams of edge coupler. (a) Overall structure diagram of cross-type waveguide coupler; (b) cross section of cross-type heterogeneous multi-core waveguide; (c) mode field distribution of cross-type heterogeneous multi-core waveguide
    Fig. 1. Structural diagrams of edge coupler. (a) Overall structure diagram of cross-type waveguide coupler; (b) cross section of cross-type heterogeneous multi-core waveguide; (c) mode field distribution of cross-type heterogeneous multi-core waveguide
    Overlap between cross-type waveguide and fiber. (a) TM mode overlap between HNAF and cross-type waveguide; (b) TE mode overlap between HNAF and cross-type waveguide
    Fig. 2. Overlap between cross-type waveguide and fiber. (a) TM mode overlap between HNAF and cross-type waveguide; (b) TE mode overlap between HNAF and cross-type waveguide
    Overlap between cross-type waveguide and fiber (within the dashed line,both TE mode overlap and TM mode overlap are beyond 0.97 or 0.98). (a)(b) Overlap of TE and TM modes when the thickness of the bottom Si waveguide of the cross-type waveguide is 70 nm; (c)(d) overlap of TE and TM modes when the thickness of the bottom Si waveguide of the cross-type waveguide is 150 nm
    Fig. 3. Overlap between cross-type waveguide and fiber (within the dashed line,both TE mode overlap and TM mode overlap are beyond 0.97 or 0.98). (a)(b) Overlap of TE and TM modes when the thickness of the bottom Si waveguide of the cross-type waveguide is 70 nm; (c)(d) overlap of TE and TM modes when the thickness of the bottom Si waveguide of the cross-type waveguide is 150 nm
    Optimization of taper parameters. (a)(b) Relative difference of effective refractive index of double waveguides and single waveguide for TE mode and TM mode varying with waveguide width; (c)(d) effective refractive indexes of TE mode and TM mode varying with waveguide width; (e)(f) mode field distributions of TE mode and TM mode
    Fig. 4. Optimization of taper parameters. (a)(b) Relative difference of effective refractive index of double waveguides and single waveguide for TE mode and TM mode varying with waveguide width; (c)(d) effective refractive indexes of TE mode and TM mode varying with waveguide width; (e)(f) mode field distributions of TE mode and TM mode
    Design of taper length. (a) Mode conversion efficiency varying with length of adiabatic taper; (b) mode conversion efficiency varying with length of Si3N4-cross waveguide taper; (c) top view of adiabatic taper and Si3N4-cross waveguide taper
    Fig. 5. Design of taper length. (a) Mode conversion efficiency varying with length of adiabatic taper; (b) mode conversion efficiency varying with length of Si3N4-cross waveguide taper; (c) top view of adiabatic taper and Si3N4-cross waveguide taper
    Propagation of optical field in mode-spot converter. (a) Mode field distribution corresponding to each cross-section; (b) side view of optical field distribution
    Fig. 6. Propagation of optical field in mode-spot converter. (a) Mode field distribution corresponding to each cross-section; (b) side view of optical field distribution
    Bandwidth simulation analysis. (a) Overlap varying with wavelength; (b) coupling efficiency of end coupler varying with wavelength
    Fig. 7. Bandwidth simulation analysis. (a) Overlap varying with wavelength; (b) coupling efficiency of end coupler varying with wavelength
    Overlap between designed coupler and HNAF varying with horizontal and vertical displacements. (a) TE mode; (b) TM mode
    Fig. 8. Overlap between designed coupler and HNAF varying with horizontal and vertical displacements. (a) TE mode; (b) TM mode
    Lijie Zhang, Yanjing Fan, Jingjing Hu, Yuxuan Cheng, Yiying Gu. Edge Coupler in Silicon Photonics Based on Cross-Type Heterogeneous Multi-Core Waveguide[J]. Acta Optica Sinica, 2024, 44(19): 1913001
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