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Near-unity transparency of a continuous metal film via cooperative effects of double plasmonic arrays

机译:通过双等离子体阵列的协同作用,连续金属膜的近统一透明性

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摘要

Metal structures with high optical transparency and conductivity are of great importance for practical applications in optoelectronic devices. Here we investigate the transparency response of a continuous metal film sandwiched by double plasmonic nanoparticle arrays. The upper nanoparticle array shows efficient light trapping of the incident field, acting as a light input coupler, and the lower nanoparticle array shows a light release gate opening at the other side, acting as the light output coupler. The strong near-field light-matter interactions of the nano-scale separated plasmonic nanoparticles, the excitation of surface plasmon waves of the metal film, and their cooperative coupling effects result in broadband scattering cancellation and near-unity transparency (up to 96%) in the optical regime. The transparency response in such a structure can be efficiently modified by varying the gap distance of adjacent nanoparticles, dielectric environments, and the distance between the plasmonic array and the metal film. This motif may provide a new alternative approach to obtain transparent and highly conducting metal structures with potential applications in transparent conductors, plasmonic filters, and highly integrated light input and output components.
机译:具有高光学透明性和导电性的金属结构对于光电器件的实际应用非常重要。在这里,我们研究了由双等离激元纳米粒子阵列夹在中间的连续金属膜的透明度响应。上部纳米颗粒阵列显示出入射场的有效光俘获,用作光输入耦合器,下部纳米颗粒阵列显示出在另一侧的光释放门开口,用作光输出耦合器。纳米级分离的等离激元纳米粒子的强近场光物质相互作用,金属膜的表面等离激元波的激发及其协同耦合效应导致宽带散射消除和近乎统一的透明性(高达96%)在光学方面。通过改变相邻纳米颗粒的间隙距离,介电环境以及等离激元阵列与金属膜之间的距离,可以有效地修改这种结构中的透明度响应。该图案可以提供一种新的替代方法,以获取透明且导电性高的金属结构,并可能将其应用于透明导体,等离子滤波器以及高度集成的光输入和输出组件中。

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