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Scalable and controlled self-assembly of aluminum-based random plasmonic metasurfaces

机译:铝基随机等离子超表面的可扩展和受控自组装

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摘要

Subwavelength metal-dielectric plasmonic metasurfaces enable light management beyond the diffraction limit. However, a cost-effective and reliable fabrication method for such structures remains a major challenge hindering their full exploitation. Here, we propose a simple yet powerful manufacturing route for plasmonic metasurfaces based on a bottom-up approach. The fabricated metasurfaces consist of a dense distribution of randomly oriented nanoscale scatterers composed of aluminum (Al) nanohole-disk pairs, which exhibit angle-independent scattering that is tunable across the entire visible spectrum. The macroscopic response of the metasurfaces is controlled via the properties of an isolated Al nanohole-disk pair at the nanoscale. In addition, the optical field confinement at the scatterers and their random distribution of sizes result in a strongly enhanced Raman signal that enables broadly tunable excitation using a single substrate. This unique combination of a reliable and lithography-free methodology with the use of aluminum permits the exploitation of the full potential of random plasmonic metasurfaces for diagnostics and coloration.
机译:亚波长金属电介质等离子超表面可实现超出衍射极限的光管理。然而,用于这种结构的成本有效且可靠的制造方法仍然是阻碍其充分利用的主要挑战。在这里,我们提出了一种基于自底向上方法的等离子超颖表面的简单而强大的制造路线。所制造的超颖表面由由铝(Al)纳米孔-磁盘对组成的随机取向的纳米级散射体的密集分布组成,这些散射体表现出在整个可见光谱范围内可调的与角度无关的散射。通过在纳米尺度上隔离的Al纳米孔-磁盘对的属性控制超表面的宏观响应。此外,散射体处的光场限制及其大小的随机分布会导致拉曼信号大大增强,从而可以使用单个基板进行广泛可调的激发。可靠且无需光刻的方法与铝的这种独特结合,可以充分利用随机等离子超表面的全部潜力进行诊断和着色。

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