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首页> 外文期刊>Journal of Nanophotonics >Investigation of propagation properties of plasmonic nanostructures with nonparaxial Gaussian beam illumination
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Investigation of propagation properties of plasmonic nanostructures with nonparaxial Gaussian beam illumination

机译:非傍轴高斯光束照射下等离子体纳米结构的传输特性研究

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摘要

An optical probe with a single aperture flanked by depth-tuned grooves is presented. It is employed as an example to investigate propagation properties of the plasmonic nanostructures with a nonparaxial Gaussian beam illumination. The propagation through the subwavelength aperture is the process that a near-field diffraction of the Gaussian beam interferes with the surface plasmon polaritons (SPP) wave induced wavelets on surface of the grooves. An enhanced optical transmission at the exit side of a subwavelength aperture and a degraded reflection at top side of the compound dielectric/metal nanostructure (air/glass/C/Ag/air) of the probe can be generated with this illumination. Characteristics of the Gaussian beam illumination have been studied numerically via analysis of the transmission and reflection issues. In contrast, the results for plane wave illumination were given as well. Two-dimensional (2D) finite-difference time-domain (FDTD) algorithm is employed for the 2D simulation.
机译:提出了一种具有单个孔的光学探针,其两侧是深度可调的凹槽。本文以非傍轴高斯光束照明为例,研究了等离子体纳米结构的传播特性。通过亚波长孔径的传播是高斯光束的近场衍射干扰凹槽表面上的表面等离振子极化子(SPP)波感应子波的过程。通过这种照明,可以在子波长孔的出射侧增强光学传输,并在探针的复合介电/金属纳米结构(空气/玻璃/ C / Ag /空气)的顶侧反射减弱。通过对透射和反射问题的分析,对高斯光束照明的特性进行了数值研究。相反,还给出了平面波照明的结果。二维(2D)有限差分时域(FDTD)算法用于2D仿真。

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