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复合纳米棒-纳米孔阵列中的等离子体杂交

Plasmon Hybridizations in Compound Nanorod-Nanohole Arrays.

作者信息

Razavi Shahab, Zhao Yiping

机构信息

Department of Physics and Astronomy, University of Georgia, Athens, GA 30602, USA.

出版信息

Nanomaterials (Basel). 2023 Jul 23;13(14):2135. doi: 10.3390/nano13142135.

Abstract

This study shows that a hybridized plasmonic mode, represented by an additional transmission peak, in a compound structure consisting of a nanorod embedded in a nanohole can be effectively described as a quasi-dipole oscillator. When two nanorods are introduced into a nanohole, these two quasi-dipoles can couple and hybridize, giving rise to two additional transmission peaks in the enhanced optical transmission spectrum. The relative intensities of these peaks can be controlled by adjusting the incident polarization, while their separations can be tuned by modifying the length of the nanorods. The concept of quasi-dipoles in compound nanohole structures can be further extended to predict the coupling behavior of even more complex compound configurations, such as multiple nanorods within nanoholes, resulting in the generation of multiple hybridization states. Consequently, the shape and response of the transmission peaks can be precisely engineered. This strategy could be used to design nanohole-based metasurfaces for applications such as ultra-thin optical filters, waveplates, polarizers, etc.

摘要

本研究表明,在由嵌入纳米孔中的纳米棒组成的复合结构中,以额外的传输峰为代表的杂化等离子体模式可以有效地描述为准偶极子振荡器。当将两个纳米棒引入纳米孔时,这两个准偶极子可以耦合并杂化,从而在增强的光传输光谱中产生两个额外的传输峰。这些峰的相对强度可以通过调整入射偏振来控制,而它们的间距可以通过改变纳米棒的长度来调节。复合纳米孔结构中的准偶极子概念可以进一步扩展,以预测更复杂的复合结构(如纳米孔内的多个纳米棒)的耦合行为,从而产生多种杂化状态。因此,可以精确设计传输峰的形状和响应。该策略可用于设计基于纳米孔的超表面,用于超薄光学滤波器、波片、偏振器等应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/fdac/10383225/9eb84e588912/nanomaterials-13-02135-g001.jpg

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