Abstract

This paper mainly studies the plasma optical properties of the silver nanorod and gold film system with gap structure. During the experiment, the finite element analysis method and COMSOL Multiphysics are used for modeling and simulation. The study changes the thickness of the PE spacer layer between the silver nanorod and the gold film, the conditions of the incident light and the surrounding environment medium. Due to the anisotropic characteristics of silver nanorod, the microcavity system is extremely sensitive to the changes of internal and external conditions, and the system exhibits strong performance along the long axis of the nanorod. By analyzing the extinction spectrum of the nanoparticle and the electric field section diagrams at resonance peak, it is found that the plasma optical properties of the system greatly depend on the gap distance, and the surrounding electric field of the silver nanorod is confined in the gap. Both ends of the nanorod and the gap are distributed with high concentrations of hot spots, which reflects the strong hybridization of multiple resonance modes. Under certain excitation conditions, the plasma hybridization behavior will produce a multi-pole mode, and the surface electric field distribution of the nanorod reflects the spatial directionality. In addition, the system is also highly sensitive to the environmental media, which will cause significant changes in its optical properties. The plasma microcavity system with silver nanorod and gold film studied in this paper can be used to develop high-sensitivity biosensors, which has great value in the field of biomedical detection.

Highlights

  • The outbreak of a new type of coronavirus pneumonia in 2020 has made mankind deeply aware of the fragility of life, and made people see the infinite possibilities of modern medical technology

  • This paper mainly studies the optical properties of the gap structure of the silver nanorod and gold film system, by changing the gap distance inside the system, the external conditions and the surrounding environment medium

  • They respectively reflect the effect of the free electrons on the surface of the silver nanorod moving along the long axis and the short axis of the nanorod

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Summary

INTRODUCTION

The outbreak of a new type of coronavirus pneumonia in 2020 has made mankind deeply aware of the fragility of life, and made people see the infinite possibilities of modern medical technology. Wang et al proposed a surface plasmon resonance fiber biosensor using multi-layer gold nanoparticles/Au film coupling to enhance sensitivity (Wang X. et al, 2021). This paper mainly studies the optical properties of the gap structure of the silver nanorod and gold film system, by changing the gap distance inside the system, the external conditions and the surrounding environment medium. COMSOL Multiphysics 5.5 is used to simulate the extinction cross section and electric field distribution of the silver nanorod and gold film model. The silver nanorod is set to the active state, and the field without scatters obtained in the first step is used as the background field where the silver nanorodgold film model is located In this way, Maxwell’s equations can be solved successively to calculate the silver’s extinction crosssection data and surface electric field distribution of the nanorod. The experiment selected air, water, glass, and polyether ether ketone (PEEK) for simulation

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DATA AVAILABILITY STATEMENT
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