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具有纳米级间隙的导体-间隙-电介质系统中的亚波长等离子体模式。

Sub-wavelength plasmonic modes in a conductor-gap-dielectric system with a nanoscale gap.

作者信息

Avrutsky Ivan, Soref Richard, Buchwald Walter

机构信息

Department of Electrical and Computer Engineering, Wayne State University, Detroit, MI 48202, USA.

出版信息

Opt Express. 2010 Jan 4;18(1):348-63. doi: 10.1364/OE.18.000348.

Abstract

We study guided modes in a conductor-gap-dielectric (CGD) system that includes a low-index dielectric gap layer of deep sub-wavelength thickness sandwiched between a conductor and a high-index dielectric cladding. Analysis of the dispersion equation for CGD modes provides an analytical estimation for the cut-off thickness of the gap layer. This guided mode is unusual because it exists when the gap thickness is less than the cutoff thickness. In the direction normal to the interfaces, the modal electric field is tightly confined within the gap. Sub-wavelength lateral mode confinement is readily provided by a spatial variation of the gap-layer thickness: the modal field localizes at the narrowest gap. Various lateral confinement schemes are proposed and verified by numerical simulations. Possible applications of CGD modes include surface-plasmon nano-lasers (SPASERs) and sensors. If these plasmonic waveguides are scaled for operation at far infrared rather than telecomm wavelengths, then the propagation losses are dramatically reduced, thereby enabling the construction of practical chip-scale plasmonic integrated circuits or PLICs.

摘要

我们研究了导体-间隙-电介质(CGD)系统中的导模,该系统包括夹在导体和高折射率电介质包层之间的深亚波长厚度的低折射率电介质间隙层。对CGD模式色散方程的分析为间隙层的截止厚度提供了一种解析估计。这种导模很不寻常,因为当间隙厚度小于截止厚度时它依然存在。在垂直于界面的方向上,模式电场被紧密限制在间隙内。间隙层厚度的空间变化很容易实现亚波长横向模式限制:模式场定位在最窄的间隙处。提出了各种横向限制方案并通过数值模拟进行了验证。CGD模式的可能应用包括表面等离子体纳米激光器(SPASER)和传感器。如果这些等离子体波导按比例缩放以在远红外而非电信波长下运行,那么传播损耗将显著降低,从而能够构建实用的芯片级等离子体集成电路或PLIC。

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