研究目的
To theoretically propose and experimentally demonstrate a class of resonances in photonic crystal slabs that radiate only towards one side of the slab, with no mirror placed on the other side, and to explore their topological nature and potential applications.
研究成果
The study successfully demonstrates the existence of unidirectional guided resonances in photonic crystal slabs, confirming their topological nature through polarimetry measurements. These resonances could enable energy-efficient grating couplers and antennas for light detection and ranging.
研究不足
The study acknowledges the challenges in fabricating samples exactly as designed due to etching process inaccuracies. Random fluctuations in fabricated samples can induce scattering losses and lower asymmetry ratios.
1:Experimental Design and Method Selection
The study involves the design of one-dimensional periodic photonic crystal slabs with specific geometries to achieve unidirectional guided resonances (UGRs). The theoretical framework includes the analysis of topological charges in the polarization field.
2:Sample Selection and Data Sources
Samples are fabricated on silicon-on-insulator wafers with specific dimensions and materials to support the desired resonances. Data is collected through experimental setups designed to measure upward and downward radiation intensities.
3:List of Experimental Equipment and Materials
Includes a tunable telecommunication laser, photodetectors, cameras, polarizers, and quarter-wave plates for polarimetry measurements. Fabrication involves electron-beam lithography and reactive ion etching.
4:Experimental Procedures and Operational Workflow
The process involves fabricating photonic crystal samples, setting up experimental configurations to measure radiation fields, and performing polarimetry measurements to analyze the topological nature of the resonances.
5:Data Analysis Methods
Data analysis includes fitting experimental spectra to extract quality factors and asymmetry ratios, and reconstructing polarization states through Stokes parameters.
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