研究目的
To propose a highly sensitive quasi-D-shaped fiber optic biosensor for detection of high refractive index (RI) liquid analytes via surface plasmon resonance.
研究成果
The proposed quasi-D-shaped analyte-filled plasmonic fiber optic biosensor exhibits a broad range of analyte RI detection, extremely large sensitivity, and high average sensitivity. It offers a promising candidate for variety of sensing applications in chemistry and biology due to its straight-forward fabrication procedure, miniaturized and cost-effective design.
研究不足
The major limitations include fabrication-induced imperfections which can shift the resonance wavelength of the device and possible errors when dealing with lossy liquids in amplitude sensitivity approach.
1:Experimental Design and Method Selection:
The study utilizes a finite element method (FEM) with PML boundary conditions and extra-fine mesh size for numerical analysis. The sensor's performance is analyzed using both spectral sensitivity and amplitude sensitivity methods.
2:Sample Selection and Data Sources:
Analyte RI ranging from
3:45 to 60 is considered. List of Experimental Equipment and Materials:
A quasi-D-shaped hollow-core photonic crystal fiber (PCF) filled with analyte and coated with a thin gold film as the plasmonic material.
4:Experimental Procedures and Operational Workflow:
The sensor's design parameters are optimized for maximum sensitivity. The interplay between the fiber fundamental mode and plasmonic mode is studied to understand the resonance peaks formation.
5:Data Analysis Methods:
The sensitivity of the proposed biosensor is analyzed with respect to changes in analyte RI using spectral and amplitude sensitivity methods.
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