研究目的
To design a compact and low-power all-optical surface plasmon switch with isolated pump and data waveguides and a rectangular cavity containing nano-silver strips for use in complex integrated optical circuits.
研究成果
The proposed all-optical plasmonic switch demonstrates compact size, low pumping intensity, and high contrast ratios, making it suitable for complex integrated optical circuits. The use of isolated paths for data and pump signals enhances its performance, with potential applications in ultrafast optical communication systems.
研究不足
The study focuses on numerical simulations and theoretical analysis, with potential limitations in practical implementation due to material properties and fabrication challenges. The performance may vary with different Kerr materials and structural parameters.
1:Experimental Design and Method Selection:
The study employs a novel topology for a plasmonic all-optical switch, utilizing a rectangular cavity coupled with two cross waveguides filled with a non-linear insulator with high Kerr-type nonlinearity. The switch is numerically simulated using the finite difference time domain (FDTD) method and analyzed using the transmission line method for verification.
2:Sample Selection and Data Sources:
The structure includes silver strips with a tapered pattern inserted in the rectangular cavity to create a sharp edge in the transmission spectrum. The metal and insulator materials are silver and AuSiO2, respectively.
3:List of Experimental Equipment and Materials:
The materials used include silver for the metal parts and AuSiO2 as the non-linear insulator. The simulation tools include FDTD and transmission line method analysis.
4:Experimental Procedures and Operational Workflow:
The switch operates by changing the refractive index of the Kerr material when both data and pump signals are applied, triggering the switching mechanism. The isolation between data and pump signals is achieved by allocating different paths for each.
5:Data Analysis Methods:
The performance of the switch is evaluated based on its compact size, low pumping intensity, simplicity, symmetrical structure, suitable isolation, and high contrast ratios.
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