Department of Physics, University of Calabria and CNR Nanotec , S. S. di Cosenza, 87036 Rende, Italy.
CNR, Institute of Applied Sciences and Intelligent Systems , 80072 Pozzuoli, Italy.
ACS Nano. 2018 Jan 23;12(1):504-512. doi: 10.1021/acsnano.7b07076. Epub 2017 Dec 26.
Plasmonic quasi-periodic structures are well-known to exhibit several surprising phenomena with respect to their periodic counterparts, due to their long-range order and higher rotational symmetry. Thanks to their specific geometrical arrangement, plasmonic quasi-crystals offer unique possibilities in tailoring the coupling and propagation of surface plasmons through their lattice, a scenario in which a plethora of fascinating phenomena can take place. In this paper we investigate the extraordinary transmission phenomenon occurring in specifically patterned Thue-Morse nanocavities, demonstrating noticeable enhanced transmission, directly revealed by near-field optical experiments, performed by means of a scanning near-field optical microscope (SNOM). SNOM further provides an intuitive picture of confined plasmon modes inside the nanocavities and confirms that localization of plasmon modes is based on size and depth of nanocavities, while cross talk between close cavities via propagating plasmons holds the polarization response of patterned quasi-crystals. Our performed numerical simulations are in good agreement with the experimental results. Thus, the control on cavity size and incident polarization can be used to alter the intensity and spatial properties of confined cavity modes in such structures, which can be exploited in order to design a plasmonic device with customized optical properties and desired functionalities, to be used for several applications in quantum plasmonics.
由于具有长程有序和更高的旋转对称性,等离子体准周期结构在与周期性结构相比时,表现出了几种令人惊讶的现象。由于其特定的几何排列,等离子体准晶体在通过其晶格来调整表面等离激元的耦合和传播方面提供了独特的可能性,在这种情况下,许多迷人的现象可能会发生。在本文中,我们研究了在特定图案的 Thue-Morse 纳米腔中发生的非凡透射现象,通过扫描近场光学显微镜 (SNOM) 进行的近场光学实验直接揭示了明显增强的透射。SNOM 进一步提供了纳米腔内部受限等离子体模式的直观图像,并证实了等离子体模式的局域化基于纳米腔的尺寸和深度,而通过传播等离子体的紧密腔之间的串扰保持了图案准晶体的偏振响应。我们进行的数值模拟与实验结果吻合得很好。因此,可以控制腔的尺寸和入射偏振来改变这种结构中受限腔模式的强度和空间特性,这可以用于设计具有定制光学特性和所需功能的等离子体器件,以用于量子等离子体学中的几个应用。