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Fabrication and characterization of plasmonic nanocone antennas for strong spontaneous emission enhancement

机译:用于增强自发发射的等离激元纳米锥天线的制造与表征

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摘要

Plasmonic antennas are attractive nanostructures for a large variety of studies ranging from fundamental aspects of light-matter interactions at the nanoscale to industry-relevant applications such as ultrasensitive sensing, enhanced absorption in solar cells or solar fuel generation. A particularly interesting feature of these antennas is that they can enhance the fluorescence properties of emitters. Theoretical calculations have shown that nanocone antennas provide ideal results, but a high degree of manufacturing precision and control is needed to reach optimal performance. In this study, we report on the fabrication of nanocones with base diameters and heights in the range of 100 nm with variable aspect ratios using focused ion beam milling of sputtered nano-crystalline gold layers. The controlled fabrication process allows us to obtain cones with tailored plasmon resonances. The measured plasmon spectra show very good agreement with finite-difference time-domain calculations. Theoretical investigations predict that these nanocones can enhance the spontaneous emission rate of a quantum emitter by several hundred times while keeping its quantum efficiency above 60%.
机译:等离子天线是吸引人的纳米结构,其研究范围很广,从纳米级光物质相互作用的基本方面到与工业相关的应用,如超灵敏传感,太阳能电池或太阳能燃料吸收的增强等。这些天线的一个特别有趣的特征是它们可以增强发射器的荧光特性。理论计算表明,纳米锥天线可提供理想的结果,但要达到最佳性能,还需要高度的制造精度和控制能力。在这项研究中,我们报告了使用溅射的纳米晶体金层的聚焦离子束铣削制造直径和高度在100 nm范围内,纵横比可变的纳米锥的过程。受控的制造过程使我们能够获得具有定制的等离振子共振的锥体。测得的等离激元光谱与有限差分时域计算显示出非常好的一致性。理论研究预测,这些纳米锥可以将量子发射器的自发发射速率提高数百倍,同时保持其量子效率在60%以上。

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