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Plasmonic Spectral Engineering via Interferometric Illumination of Colloid Sphere Monolayers

机译:胶体球单层干涉照明的等离子光谱工程。

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摘要

A novel method is presented for complex structure fabrication, which is capable of breaking the hexagonal symmetry of the conventional colloid sphere lithography via the interferometric illumination of colloid sphere monolayers (IICSM). It is demonstrated that the perfect lateral synchronization of a linear intensity modulation originating from twobeam interference with respect to a hexagonal colloid sphere monolayer makes it possible to tune four complex structure parameters independently. Based on comparative study of hexagonal and rectangular hole doublet-arrays, which can be generated by linearly polarized light via homogeneous illumination and via IICSM, it is shown that the novel IICSM method enables plasmonic spectral engineering with higher degrees of freedom. The unique spectral properties of the complex patterns attainable via IICSM are more precisely tunable by properly selected azimuthal orientation during illumination and by the surrounding medium. It is shown that coupling phenomena between propagating and localized plasmonic modes on appropriately designed complex structures result in unique charge and near-field distribution accompanied by narrow Fano lines. Optimal configurations of complex plasmonic structures consisting of a rectangular array of hole doublets with different geometrical size parameters are presented, which ensure enhanced sensitivity in bio-detection.
机译:提出了一种用于复杂结构制造的新方法,该方法能够通过胶体球单层(IICSM)的干涉照明来打破常规胶体球光刻的六边形对称性。已经证明,相对于六角形胶体球单层,源自两束干涉的线性强度调制的完美横向同步,使得可以独立地调谐四个复杂的结构参数。基于六边形和矩形孔双峰阵列的比较研究,可以通过线性偏振光通过均匀照明和IICSM产生线性偏振光,该结果表明,新型IICSM方法可以实现具有更高自由度的等离子体光谱工程。通过IICSM获得的复杂图案的独特光谱特性可以通过在照明过程中正确选择的方位角方向以及周围的介质进行精确调节。结果表明,在适当设计的复杂结构上,传播和局部等离激元模式之间的耦合现象会导致独特的电荷和近场分布,并伴随着狭窄的法诺线。提出了复杂的等离激元结构的最佳配置,该结构由具有不同几何尺寸参数的孔双峰的矩形阵列组成,可确保增强的生物检测灵敏度。

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