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亚波长表面等离激元模式的几何结构与材料

Geometries and materials for subwavelength surface plasmon modes.

作者信息

Zia Rashid, Selker Mark D, Catrysse Peter B, Brongersma Mark L

机构信息

Geballe Laboratory for Advanced Materials, Stanford University, Stanford, California 94305, USA.

出版信息

J Opt Soc Am A Opt Image Sci Vis. 2004 Dec;21(12):2442-6. doi: 10.1364/josaa.21.002442.

Abstract

Plasmonic waveguides can guide light along metal-dielectric interfaces with propagating wave vectors of greater magnitude than are available in free space and hence with propagating wavelengths shorter than those in vacuum. This is a necessary, rather than sufficient, condition for subwavelength confinement of the optical mode. By use of the reflection pole method, the two-dimensional modal solutions for single planar waveguides as well as adjacent waveguide systems are solved. We demonstrate that, to achieve subwavelength pitches, a metal-insulator-metal geometry is required with higher confinement factors and smaller spatial extent than conventional insulator-metal-insulator structures. The resulting trade-off between propagation and confinement for surface plasmons is discussed, and optimization by materials selection is described.

摘要

表面等离子体波导可以沿着金属 - 电介质界面引导光,其传播波矢的大小比自由空间中的更大,因此传播波长比真空中的更短。这是光学模式亚波长限制的必要条件而非充分条件。通过使用反射极点法,求解了单个平面波导以及相邻波导系统的二维模式解。我们证明,为了实现亚波长间距,需要一种金属 - 绝缘体 - 金属结构,其限制因子比传统的绝缘体 - 金属 - 绝缘体结构更高,空间范围更小。讨论了表面等离子体在传播和限制之间的权衡,并描述了通过材料选择进行的优化。

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