研究目的
Designing, testing, and optimizing a novel two-dimensional photonic-crystal-based all-optical encoder with ultracompact size, ultrafast switching speed, and no need for auxiliary or bias inputs.
研究成果
The proposed all-optical encoder design achieves significant improvements in size, switching speed, and operational simplicity, making it suitable for integration into high-speed photonic networks. The trade-off between contrast ratio and switching speed was explored, confirming the design's suitability for specific applications.
研究不足
The design does not support multiwavelength operation, which is considered a drawback. Additionally, the trade-off between contrast ratio and switching speed may limit performance in certain applications.
1:Experimental Design and Method Selection
The design is based on a linear square-lattice photonic crystal platform, utilizing finite-difference time-domain (FDTD) and plane-wave expansion (PWE) methods for analysis and optimization.
2:Sample Selection and Data Sources
The structure consists of cylindrical silicon rods suspended in air, with specific dimensions and properties for optimal performance.
3:List of Experimental Equipment and Materials
Silicon rods with specified radius and refractive index, arranged in a square lattice.
4:Experimental Procedures and Operational Workflow
The design process involved optimizing the radius of the inner rods and analyzing the structure's performance through simulation.
5:Data Analysis Methods
Performance was evaluated based on switching speed, delay time, and contrast ratio, with optimization targeting these parameters.
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