Photonics Research, Volume. 6, Issue 1, 37(2018)
Deep-subwavelength light transmission in hybrid nanowire-loaded silicon nano-rib waveguides
Fig. 1. Hybrid nanowire-loaded silicon nano-rib waveguide. (a) Schematic of the 3D geometry. (b) Cross section of the configuration within the
Fig. 2. Normalized electric field distributions of the fundamental hybrid plasmonic mode supported by a typical hybrid nanowire-loaded nano-rib waveguide. The geometric parameters of the waveguide are
Fig. 3. Dependence of modal properties on the radius of the silver nanowire for a silicon slab with different thicknesses (
Fig. 4. Dependence of the modal properties on the size of the silicon nano-rib (
Fig. 5. Dependence of the hybrid mode’s properties on lateral misalignments (the waveguide dimensions are
Fig. 6. Dependence of the hybrid mode’s properties on
Fig. 7. (a), (b) Parametric plots of normalized mode area (
Fig. 8. Cross talk analysis for the proposed hybrid nanowire-loaded nano-rib waveguides, and performance comparison with metallic nanowire-loaded SOI waveguides and nanowire waveguides. (a) 3D schematic of the coupling system, which consists of two horizontally parallel hybrid nanowire-loaded nano-rib waveguides. The center-to-center separation between the waveguides is
Fig. 9. (a) Dependence of the light transmission through a 90° hybrid nanowire-loaded nano-rib waveguide bend on the bend radius. The physical dimensions of the hybrid waveguide used in this study are
Fig. 10. Excitation of the fundamental plasmonic mode guided by the hybrid nanowire-loaded nano-rib waveguide. The 3D electric field profile shows that a paraxial Gaussian beam is focused normally onto the left terminus of a silver nanowire, which efficiently launches the plasmonic mode in the hybrid waveguide. In the simulations, the length of the silver nanowire is set to be 4 μm. Other structural parameters for the cross section of the configuration are
Fig. 11. Schematic of modified hybrid nanowire-loaded nano-rib waveguides and the electrical field distributions for the fundamental guided modes. (a), (b) Hybrid nanowire-loaded nano-rib waveguides that incorporate a silicon nanowedge in between the silicon slab and the silver nanowire (
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Yusheng Bian, Qiang Ren, Lei Kang, Taiwei Yue, Pingjuan L. Werner, Douglas H. Werner, "Deep-subwavelength light transmission in hybrid nanowire-loaded silicon nano-rib waveguides," Photonics Res. 6, 37 (2018)
Category: Surface Plasmons
Received: Aug. 31, 2017
Accepted: Nov. 14, 2017
Published Online: Jul. 19, 2018
The Author Email: Douglas H. Werner (dhw@psu.edu)