Sphere-on-pillar optical nano-antennas

X. Cui, Zheng Fan, X. Tao, Weihua Zhang, D. Erni, Xudong Fan, Xiaobin Zhang, Lixin Dong
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引用次数: 2

Abstract

We propose an optical nano-antenna consisting of a pair of sphere-on-pillar structures. Experiments show that the controlled fabrication of metallic nanospheres on the tip of carbon nanotubes (CNTs) is effective, and numerical investigation revealed that a pair of such structures are capable to convert free space radiation into an intense near-field; hence can function as an optical antenna. The fabrication process, electron-beam-induced bubbling (EBIB) and electromigration-based bubbling (EMBB), are based on nanofluidic mass delivery at the attogram scale using metal-filled CNTs. Under the irradiation of a high energy electron beam of a transmission electron microscope (TEM), the encapsulated metal is melted and extruded out from the tip of the nanotube; generating a metallic sphere. In the case that the encapsulated materials inside the CNT have a higher melting point than that of the beam energy can reach, electromigration-based mass delivery is an optional process to apply. Under a low bias (2–2.5V), spherical nanoparticles are formed on the tips of nanotubes. The optical properties of the nano-antenna are analyzed numerically using the finite element method. Our investigations have revealed that the field enhancement, the resonances, and the radiation patterns can be easily tuned since all these quantities strongly depend on the size of the nanotubes and the metallic spheres, as well as on their material properties. Sphere-on-pillar optical antennas carry a great potential for bio-sensing, tip-enhanced spectroscopy applications, and interfacing integrated nanophotonic circuits.
球形柱上光学纳米天线
我们提出了一种由一对球柱结构组成的光学纳米天线。实验结果表明,在碳纳米管(CNTs)的尖端制造金属纳米球是有效的,数值研究表明,一对这样的结构能够将自由空间辐射转化为强近场辐射;因此可以用作光学天线。电子束诱导鼓泡(EBIB)和基于电迁移的鼓泡(EMBB)的制造工艺是基于使用金属填充的碳纳米管在阿图尺度上的纳米流体质量传递。在透射电子显微镜(TEM)的高能电子束照射下,被封装的金属被熔化并从纳米管尖端挤出;产生一个金属球体。如果碳纳米管内部的封装材料的熔点高于光束能量所能达到的熔点,则基于电迁移的质量传递是一种可选的应用过程。在低偏压(2-2.5V)下,纳米管的尖端形成球形纳米颗粒。采用有限元法对纳米天线的光学特性进行了数值分析。我们的研究表明,场增强、共振和辐射模式可以很容易地调整,因为所有这些量都强烈依赖于纳米管和金属球的大小,以及它们的材料性质。柱上球形光学天线在生物传感、尖端增强光谱应用和接口集成纳米光子电路方面具有巨大的潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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