Niloofar Ebrahimzadeh Esfahani, Jaroslav Kovác, Giuseppe Maruccio, Silvia Rizzato, Soňa Kovácová
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For both polarizations, the periodic circular nanodisk array showed a stronger field enhancement with an electric field enhancement factor of 6.6 × 10<sup>6</sup> and TE polarization, and a larger absorptance of 98% at its dipole resonance wavelength, indicating the fundamental plasmonic mode. In addition, weaker resonant modes were observed in the absorptance and reflectance spectra of both nanostructures, with the nanostrips exhibiting sharper and stronger higher-order modes, making them suitable for applications requiring precise wavelength selectivity and narrow-band responses. Despite their different geometric shapes, both structures exhibited similar optimized metal film thickness and nanoparticle height, comparable modes in number and position, and identical optimized light incidence angles. 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引用次数: 0
摘要
通过使用 COMSOL Multiphysics 软件在三维模型中模拟其光学特性,提出、优化并比较了金属-绝缘体-金属(MIM)设置中的两种等离子纳米天线配置--纳米盘和纳米带阵列。系统地研究了光学响应,包括电场增强、吸收、反射和透射光谱。优化几何参数后,两种结构都显著增强了间隙层内的电场,并具有几乎完美的光吸收能力。结果表明,电场的增强取决于入射光的偏振。在两种偏振情况下,周期性圆形纳米盘阵列的电场增强因子为 6.6 × 106,在 TE 偏振情况下,电场增强更强;在偶极子共振波长处,吸收率更大,达到 98%,表明这是基本质子模式。此外,在两种纳米结构的吸收光谱和反射光谱中都观察到了较弱的共振模式,而纳米条则表现出更清晰、更强的高阶模式,使其适合于需要精确波长选择性和窄带响应的应用。尽管几何形状不同,但两种结构都表现出相似的优化金属膜厚度和纳米粒子高度、相似的模式数量和位置以及相同的优化光入射角。此外,增加介电间隙层厚度并将其优化到特定值后,发现其具有测量折射率的能力,因此有望用于传感应用。
Comparative Analysis of Two Different MIM Configurations of a Plasmonic Nanoantenna
Two plasmonic nanoantenna configurations—nanodisk and nanostrip arrays—in a metal–insulator-metal (MIM) setup were proposed, optimized, and compared by simulating their optical properties in three-dimensional models using COMSOL Multiphysics software. The optical responses, including electric field enhancement, absorption, reflection, and transmission spectra, were systematically investigated. Optimized geometrical parameters led to a significant enhancement of the electric field within the gap layers and almost perfect light absorptance for both structures. The results showed that the enhancement of the electric field depends on the polarization of the incident light. For both polarizations, the periodic circular nanodisk array showed a stronger field enhancement with an electric field enhancement factor of 6.6 × 106 and TE polarization, and a larger absorptance of 98% at its dipole resonance wavelength, indicating the fundamental plasmonic mode. In addition, weaker resonant modes were observed in the absorptance and reflectance spectra of both nanostructures, with the nanostrips exhibiting sharper and stronger higher-order modes, making them suitable for applications requiring precise wavelength selectivity and narrow-band responses. Despite their different geometric shapes, both structures exhibited similar optimized metal film thickness and nanoparticle height, comparable modes in number and position, and identical optimized light incidence angles. Furthermore, increasing the dielectric gap layer thickness and optimizing it to a specific value revealed its ability to measure the refractive index, making it a promising candidate for sensing applications.
期刊介绍:
Plasmonics is an international forum for the publication of peer-reviewed leading-edge original articles that both advance and report our knowledge base and practice of the interactions of free-metal electrons, Plasmons.
Topics covered include notable advances in the theory, Physics, and applications of surface plasmons in metals, to the rapidly emerging areas of nanotechnology, biophotonics, sensing, biochemistry and medicine. Topics, including the theory, synthesis and optical properties of noble metal nanostructures, patterned surfaces or materials, continuous or grated surfaces, devices, or wires for their multifarious applications are particularly welcome. Typical applications might include but are not limited to, surface enhanced spectroscopic properties, such as Raman scattering or fluorescence, as well developments in techniques such as surface plasmon resonance and near-field scanning optical microscopy.