研究目的
Investigating the mechanisms of Fano-resonant biosensing through mechanical loading of plasmonic oscillators.
研究成果
The phenomenological model introduced in this study accurately describes the Fano resonant behavior in plasmonic nanohole arrays and their response to biomolecular accumulation. It provides a predictive tool for designing biosensors with highly dispersive Fano resonances, offering insights into the mechanical loading effects of molecular accumulation on plasmonic oscillators.
研究不足
The study focuses on a specific type of plasmonic nanostructure (nanohole arrays) and may not be directly applicable to other plasmonic systems without further validation.
1:Experimental Design and Method Selection:
The study employs a phenomenological model to describe Fano resonances in plasmonic nanohole arrays, using rigorous electromagnetic simulations and experimental measurements as benchmarking tools.
2:Sample Selection and Data Sources:
Suspended plasmonic nanohole arrays are fabricated and used in biomolecular detection experiments. Transmission spectra are measured before and after surface accumulation of proteins.
3:List of Experimental Equipment and Materials:
Plasmonic nanohole arrays fabricated on a gold film suspended on a silicon nitride membrane, protein A/G and mouse protein IgG for biomolecular sensing, optical setup with a broadband light source and high-resolution spectrometer.
4:Experimental Procedures and Operational Workflow:
Fabrication of nanohole arrays, surface activation, protein immobilization, and transmission spectral measurements.
5:Data Analysis Methods:
Analysis of transmission spectra shifts and Fano resonance profiles using a coupled-oscillator model and FDTD simulations.
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