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Plasmonic amplifiers: Engineering giant light enhancements by tuning resonances in multiscale plasmonic nanostructures

机译:等离激元放大器:通过调节多尺度等离激元纳米结构中的共振来工程增强巨光

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摘要

The unique ability of plasmonic nanostructures to guide, enhance, and manipulate subwavelength light offers multiple novel applications in chemical and biological sensing, imaging, and photonic microcircuitry. Here the reproducible, giant light amplification in multiscale plasmonic structures is demonstrated. These structures combine strongly coupled components of different dimensions and topologies that resonate at the same optical frequency. A light amplifier is constructed using a silver mirror carrying light-enhancing surface plasmons, dielectric gratings forming distributed Bragg cavities on top of the mirror, and gold nanoparticle arrays self-assembled into the grating grooves. By tuning the resonances of the individual components to the same frequency, multiple enhancement of the light intensity in the nanometer gaps between the particles is achieved. Using a monolayer of benzenethiol molecules on this structure, an average SERS enhancement factor ~10~8 is obtained, and the maximum enhancement in the interparticle hot-spots is ~3 × 10~(10), in good agreement with FDTD calculations. The high enhancement factor, large density of well-ordered hot-spots, and good fidelity of the SERS signal make this design a promising platform for quantitative SERS sensing, optical detection, efficient solid state lighting, advanced photovoltaics, and other emerging photonic applications.
机译:等离子体纳米结构具有引导,增强和操纵亚波长光的独特能力,在化学和生物传感,成像和光子微电路中提供了多种新颖的应用。这里展示了在多尺度等离子体激元结构中可再现的巨型光放大。这些结构结合了不同尺寸和拓扑的强耦合组件,这些组件在相同的光频率下发生谐振。使用银镜来构造光放大器,该银镜承载光增强的表面等离激元,介电光栅在镜的顶部形成分布的布拉格腔,并且金纳米粒子阵列自组装到光栅凹槽中。通过将各个组件的共振调谐到相同的频率,可以实现粒子之间纳米间隙中光强度的多重增强。在该结构上使用单层苯硫醇分子,可获得平均SERS增强因子〜10〜8,且粒子间热点的最大增强为〜3×10〜(10),与FDTD一致计算。高增强因子,高密度的有序热点区域以及SERS信号的保真度高,使得该设计成为定量SERS传感,光学检测,高效固态照明,先进的光伏技术和其他新兴光子应用的有前途的平台。

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