Research on surface plasmon resonance Sensing of metal nano hollow elliptic cylinder

Author:

Zhu Dandan1,kang lixixn1,Tong Kai1,Yu Shancheng2,Chai JinGuo1,Wang Zhengtai1,Xu LuLu1,Ren Yuxuan1

Affiliation:

1. Yanshan University

2. ningbo Instiute of Measurement and Testing

Abstract

Abstract In this article, a new three-dimensional multi-layered nanoscale elliptical cylinder structure-based surface plasmon resonance sensor is designed, which utilizes the finite difference time domain method and FDTD simulation software for numerical simulation. The top of the structure is an elliptical cylinder array attached to a gold film with nanoholes. The middle layer is a dielectric layer, which can restrict the electromagnetic field. The bottom layer is an Au film and Si substrate. Surface plasmon resonance is excited by a vertically incident plane wave structure, and the incident electromagnetic wave is coupled to local surface plasmon through gold nanoscale elliptical cylinders. By adjusting the relevant structural parameters, the structure's resonance wavelength and resonance depth can be well adjusted. The optimized sensing structure has a smaller half-width than the traditional solid elliptical cylinder, higher sensitivity, and a larger quality factor. This structure can detect refractive indices in both gaseous and liquid environments, overcome the disadvantage of only being able to sense in a single environment, and provide a new approach for surface plasmon resonance sensing in biology and chemistry.

Publisher

Research Square Platform LLC

Reference12 articles.

1. Phillips, Jirí KS, Homola (eds) (2008) “Surface Plasmon Resonance Based Sensors,” Anal Bioanal Chem 390, 1221–1222

2. Rapid Immunoglobulin M-Based Dengue Diagnostic Test Using Surface Plasmon Resonance Biosensor

3. V. LSPR optical fibre sensors based on hollow gold nanostructures[J];Tu MH;Sens Actuators B Chem,2014

4. Yousefi M, Mozaffari N, Shirkani H Modeling of near-infrared SPR sensors based on silver-graphene asymmetric grating and investigation of their capability of gases detection[J]. Physica, E. Low-dimensional systems & nanostructures, 2022(135-):135

5. Engineering a Large Scale Indium Nanodot Array for Refractive Index Sensing[J];Xu X;ACS Appl Mater Interfaces,2016

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