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Far-field plasmonic coupling in 2-dimensional polycrystalline plasmonic arrays enables wide tunability with low-cost nanofabrication

机译:二维多晶等级阵列中的远场等离子体耦合能够通过低成本的纳米制作能力广泛可调性

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We report the experimental observation and numerical modeling study of far-field plasmonic coupling (FFPC) in 2-dimensional polycrystalline plasmonic arrays consisting of "single crystalline" domains of a random size and orientation. Even though polycrystalline plasmonic arrays are routine products of low-cost nanosphere lithography (NSL), their FFPC behavior has not been well understood. Herein, FFPC observed from gold nanodisk (AuND) arrays fabricated using NSL appears, qualitatively, to be in keeping with that of highly regular nanoparticle arrays, where they induced cyclic modulations on the peak position and linewidth of the localized surface plasmon resonance (LSPR). Remarkable blue shifts as large as 1000 nm with nearly doubled linewidth were observed experimentally. Numerical modeling was systematically carried out and showed quantitative agreement with the experimental results. Using the modeling approach, the influences of array randomness and particle size on FFPC have been studied independently for the first time. Finally, two potential applications have been developed for FFPC-based LSPR tuning. Firstly, when AuND arrays are fabricated on flexible substrates, a novel transduction mechanism can be established between the LSPR peak position and the substrate strain. Owing to the far-field propagating nature, FFPC-based transduction can effectively extend the strain-tuning displacement range by an order of magnitude compared with those based on near-field coupling. Secondly, we show that FFPC leads to an LSPR peak within 1 nm for nanoporous gold disk arrays, which otherwise have a single particle LSPR peak beyond 1.5 μm. Such a significant FFPC-induced blue shift is critically important for compatibility with the use of silicon-based detectors.
机译:我们报告了由随机尺寸和取向的“单晶”域组成的二维多晶等级阵列中远场等离子体耦合(FFPC)的实验观察和数值模拟研究。尽管多晶等级阵列是低成本纳米光刻(NSL)的常规产品,但它们的FFPC行为尚未得到很好的理解。这里,从使用NSL制造的金纳米磁盘(AUND)阵列观察到的FFPC,定性地,以与高度常规的纳米粒子阵列保持一致,在那里它们在局部表面等离子体共振(LSPR)的峰值位置和线宽上诱导循环调制。实验观察到具有几乎加倍的线宽1000nm的显着蓝色换档。系统地进行了数值建模并显示了实验结果的定量协议。使用建模方法,首次独立地研究了阵列随机性和粒度对FFPC上的粒度。最后,已经为基于FFPC的LSPR调整开发了两个潜在的应用。首先,当在柔性基板上制造逆阵列时,可以在LSPR峰位置和基板应变之间建立新的转导机构。由于远场传播性质,与基于近场耦合的人相比,基于FFPC的转换可以通过幅度的数量级有效地延伸应变调谐位移范围。其次,我们表明FFPC导致纳米多孔金盘阵列的1nm内的LSPR峰值,否则具有超过1.5μm的单粒子LSP峰。这种显着的FFPC诱导的蓝色移位对于与使用基于硅的探测器的兼容性至关重要。

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