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用于亚波长尺度二阶空间微分的表面等离子体激元电路。

Plasmonic circuit for second-order spatial differentiation at the subwavelength scale.

作者信息

Hwang Yongsop, Davis Timothy J, Lin Jiao, Yuan Xiao-Cong

出版信息

Opt Express. 2018 Mar 19;26(6):7368-7375. doi: 10.1364/OE.26.007368.

Abstract

We suggest a plasmonic nanodevice for performing the second-order spatial derivative of light fields. The device consists of five gold nanorods arranged to evanescently couple to each other so that emit cross-polarized output proportional to the second-order differentiation of the incident wave. A theoretical model based on the electrostatic eigenmode analysis is derived and numerical simulations using the finite-difference time-domain methods are provided as supporting evidence. It is shown in both the analytic and numerical methods that the proposed plasmonic circuit performs second-order differentiation of the phase of the incident light field in transmission mode with a subwavelength planar resolution. The resolution of 0.29 λ is numerically demonstrated for a 20 nm thick circuit at the wavelength of 700 nm. The suggested plasmonic device has potential application in miniaturized systems for all-optical computation.

摘要

我们提出了一种用于执行光场二阶空间导数的等离子体纳米器件。该器件由五个金纳米棒组成,它们相互间以倏逝波耦合,从而发射出与入射波的二阶微分成正比的交叉极化输出。基于静电本征模分析推导了一个理论模型,并提供了使用时域有限差分方法的数值模拟作为支撑证据。解析方法和数值方法均表明,所提出的等离子体电路在传输模式下以亚波长平面分辨率执行入射光场相位的二阶微分。在700 nm波长下,对于一个20 nm厚的电路,数值证明其分辨率为0.29λ。所提出的等离子体器件在全光计算的小型化系统中具有潜在应用。

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