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用于金属纳米狭缝发射的表面等离子体激元和光子模式波干涉散射成像的实验解决方案。

Experimental solution for scattered imaging of the interference of plasmonic and photonic mode waves launched by metal nano-slits.

作者信息

Li Xing, Gao Yaru, Jiang Shuna, Ma Li, Liu Chunxiang, Cheng Chuanfu

出版信息

Opt Express. 2015 Feb 9;23(3):3507-22. doi: 10.1364/OE.23.003507.

Abstract

Using an L-shaped metal nanoslit to generate waves of the pure photonic and plasmonic modes simultaneously, we perform an experimental solution for the scattered imaging of the interference of the two waves. From the fringe data of interference, the amplitudes and the wavevector components of the two waves are obtained. The initial phases of the two waves are obtained from the phase map reconstructed with the interference of the scattered image and the reference wave in the interferometer. The difference in the wavevector components gives rise to an additional phase delay. We introduce the scattering theory under Kirchhoff's approximation to metal slit regime and explain the wavevector difference reasonably. The solution of the quantities is a comprehensive reflection of excitation, scattering and interference of the two waves. By decomposing the polarized incident field with respect to the slit element, the scattered image produced by slit of arbitrary shape can be solved with the nanoscale Huygens-Fresnel principle. This is demonstrated by the experimental intensity pattern and phase map produced by a ring-slit and its consistency with the calculated results.

摘要

利用一个L形金属纳米狭缝同时产生纯光子模式和等离子体模式的波,我们对这两种波干涉的散射成像进行了实验求解。从干涉条纹数据中,获得了这两种波的振幅和波矢分量。这两种波的初始相位是通过用干涉仪中散射图像与参考波的干涉重建的相位图得到的。波矢分量的差异会导致额外的相位延迟。我们将基尔霍夫近似下的散射理论引入金属狭缝区域,并合理地解释了波矢差异。这些量的解是这两种波的激发、散射和干涉的综合反映。通过相对于狭缝元件分解偏振入射场,可以用纳米尺度的惠更斯-菲涅耳原理求解任意形状狭缝产生的散射图像。这通过环形狭缝产生的实验强度图案和相位图及其与计算结果的一致性得到了证明。

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