研究目的
To analyze electromagnetic scattering by a significant class of planar gratings composed of plasmonic nanorods and to demonstrate its usefulness for the design of plasmonic sensors, filters, reflectors, and guiding plasmonic devices.
研究成果
The proposed rigorous self-consistent formulation is efficiently applied to a wide class of plasmonic gratings, demonstrating its potential for designing and optimizing tailored sensors for advanced biomedical applications. The method is computationally fast and can be extended to analyze the interaction of planar plasmonic gratings with non-isotropic media.
研究不足
The study is limited to planar gratings composed of plasmonic nanorods with infinite length along their axes. The analysis of non-circular cross sections requires numerical derivation of the relevant T-matrix expression. The sensitivity of the sensor characteristics needs improvements for highly sensitive plasmonic sensors.
1:Experimental Design and Method Selection:
The study employs a self-contained formulation based on the lattice sums technique implemented in a cylindrical harmonic expansion method for full-wave scattering analysis of plasmonic gratings.
2:Sample Selection and Data Sources:
The analysis includes three configurations of plasmonic structures: multilayered periodic structures of silver nanocylinders, structures with periodic defects, and a single array of metal-coated dielectric nanocylinders coupled to a dielectric slab.
3:List of Experimental Equipment and Materials:
The numerical experiments assume Ag (silver) for the metal, with specific structural parameters for the nanocylinders and the dielectric slab.
4:Experimental Procedures and Operational Workflow:
The method involves calculating the reflection and transmission matrices for the arrays and analyzing the spectral responses of power reflection and transmission under normal incidence of an exciting plane wave.
5:Data Analysis Methods:
The analysis includes studying the near field distributions within the plasmonic lattice's super cell at different wavelengths and estimating the sensitivity of the transmission peak to the refractive index of the background medium.
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