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Metal-filled carbon nanotube based optical nanoantennas: bubbling, reshaping, and in situ characterization

机译:Metal-filled光学为基础的碳纳米管nanoantennas:冒泡,重塑和原位描述

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Controlled fabrication of metal nanospheres on nanotube tips for optical antennas is investigated experimentally. Resembling soap bubble blowing using a straw, the fabrication process is based on nanofluidic mass delivery at the attogram scale using metal-filled carbon nanotubes (m@CNTs). Two methods have been investigated including electron-beam-induced bubbling (EBIB) and electromigration-based bubbling (EMBB). EBIB involves the bombardment of an m@CNT with a high energy electron beam of a transmission electron microscope (TEM), with which the encapsulated metal is melted and flowed out from the nanotube, generating a metallic particle on a nanotube tip. In the case where the encapsulated materials inside the CNT have a higher melting point than what the beam energy can reach, EMBB is an optional process to apply. Experiments show that, under a low bias (2.0-2.5 V), nanoparticles can be formed on the nanotube tips. The final shape and crystallinity of the nanoparticles are determined by the cooling rate. Instant cooling occurs with a relatively large heat sink and causes the instant shaping of the solid deposit, which is typically similar to the shape of the molten state. With a smaller heat sink as a probe, it is possible to keep the deposit in a molten state. Instant cooling by separating the deposit from the probe can result in a perfect sphere. Surface and volume plasmons characterized with electron energy loss spectroscopy (EELS) prove that resonance occurs between a pair of as-fabricated spheres on the tip structures. Such spheres on pillars can serve as nano-optical antennas and will enable devices such as scanning near-field optical microscope (SNOM) probes, scanning anodes for field emitters, and single molecule detectors, which can find applications in bio-sensing, molecular detection, and high-resolution optical microscopy.
机译:控制制造的金属团簇纳米光学天线的技巧实验调查。泡沫使用吸管吹,制造过程是基于微流体质量交货使用metal-filled碳attogram规模纳米管(m@CNTs)。调查包括electron-beam-induced(EBIB)和electromigration-based汩汩作响冒泡(EMBB)。一个m@CNT高能电子束透射电子显微镜(TEM),封装金属的熔化和流动从纳米管,生成金属粒子在纳米管的小费。在问有封装材料更高的熔点比梁的能量可以达到,EMBB是一个可选流程申请。实验表明,在低偏压(2.0 - -2.5V),就可以形成纳米粒子在纳米管上小费。纳米粒子是由冷却速度决定。即时冷却发生相对较大散热器和导致即时塑造的固体矿床,这通常是相似的熔融状态的形状。水槽作为探针,可以保持存款在熔融状态。将存款从调查结果在一个完美的球体。具有电子能量损失光谱学(鳗鱼)证明发生共振一双纯属捏造球体之间提示结构。nano-optical天线,将使设备如扫描近场光学显微镜(SNOM)探针、扫描阳极领域发射器,和单分子探测器可以在bio-sensing找到应用程序、分子检测和高分辨率光学显微镜。

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