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Optimization of Surface Plasmon Excitation Using Resonant Nanoparticle Arrays above a Silver Film

机译:银膜上谐振纳米粒子阵列的表面等离子体激发优化

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A plasmonic coupling device consisting of an array of ellipsoidal silver nanoparticles embedded in silica in close proximity to a silver surface is studied. By tuning the inter-particle spacing, the shape of the particles in the array, and the height of the array above the silver film, the array-mediated surface plasmon excitation is studied. Finite Integration Technique simulations of such a plasmon coupler optimized for operation at a free space wavelength of 676 run are presented. Plane wave normal incidence excitation of the system results is seen to result in resonantly enhanced fields near the nanoparticles, which in turn excite surface plasmons on the metal film. The existence of an optimum particle-surface separation for maximum surface plasmon excitation efficiency is demonstrated. Analysis of the frequency dependent electric field in the simulation volume as a function of particle aspect ratio reveals the influence of the particle resonance and the surface plasmon resonance on the excitation efficiency.
机译:由嵌入在接近银表面的二氧化硅椭圆银纳米颗粒的阵列的等离激元的耦合装置进行了研究。通过调整粒子间距,所述阵列中的颗粒的形状,和银膜上方的阵列的高度,阵列介导的表面等离子体激元激发了研究。这样一个有限的集成技术的模拟等离子体耦合器676处运行的自由空间波长是为了操作优化​​。平面波的系统的结果的垂直入射激发被看作导致纳米粒子附近的共振增强领域,这反过来又激发表面等离子体激元的金属膜。为最大表面等离子体激元激发效率的最佳颗粒表面分离的存在证明。在仿真体积的颗粒纵横比的函数的依赖于频率的电场的分析表明颗粒共振和激励效率的表面等离子体激元共振的影响。

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