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由半球形外壳实现的具有超长工作距离的光子喷射。

Photonic jet with ultralong working distance by hemispheric shell.

作者信息

Hengyu Zhu, Zaichun Chen, Chong Chong Tow, Minghui Hong

出版信息

Opt Express. 2015 Mar 9;23(5):6626-33. doi: 10.1364/OE.23.006626.

DOI:10.1364/OE.23.006626
PMID:25836879
Abstract

Micro-particle assisted nano-imaging has proven its success in the past few years since it can magnify the nano-objects, especially the metallic objects, into an image then collected by a conventional microscope. Micro-shell, which is a novel design of micro-particle in the configuration of a hemisphere with a hollow core region, is proposed and optimized in this paper in order to obtain a long photonic jet far away from its flat surface, thus increasing its working distance. Its dependence on the configuration and refractive index is investigated numerically. A micro-shell with the outer and inner radii of 5 and 2.5 µm and the refractive index of 1.5 can focus the incident light of 400 nm wavelength 2.7 µm away from the micro-shell flat surface, although the photonic jet intensity decreases to 25.8% compared to the solid hemisphere. Meanwhile, the photonic jet length of the micro-shell under the incident light of 400 nm and 1000 nm wavelengths are 1.7 µm and 4.3 µm, respectively, because its hollow core region tends to reduce the angle variation of the Poynting vectors in the photonic jet. With the long working distance and long photonic jet, the micro-shell could be used to scan over a sample to obtain a large area image when coupled with a conventional microscope, which is especially useful for the samples with the rough surfaces.

摘要

在过去几年中,微粒子辅助纳米成像已证明其成功之处,因为它能够将纳米物体,尤其是金属物体放大成图像,然后由传统显微镜收集。本文提出并优化了一种微壳,它是一种新型的微粒子设计,呈具有中空核心区域的半球形结构,目的是获得远离其平面的长光子射流,从而增加其工作距离。通过数值研究了其对结构和折射率的依赖性。一个外半径和内半径分别为5微米和2.5微米且折射率为1.5的微壳,能够将400纳米波长的入射光聚焦在距离微壳平面2.7微米处,尽管与实心半球相比,光子射流强度降至25.8%。同时,在400纳米和1000纳米波长的入射光下,微壳的光子射流长度分别为1.7微米和4.3微米,这是因为其中空核心区域倾向于减少光子射流中坡印廷矢量的角度变化。由于具有长工作距离和长光子射流,微壳与传统显微镜耦合时可用于扫描样品以获得大面积图像,这对于表面粗糙的样品尤其有用。

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All-dielectric concentration of electromagnetic fields at the nanoscale: the role of photonic nanojets.纳米尺度下电磁场的全介质集中:光子纳米射流的作用。
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