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首页> 外文期刊>Nano letters >Single-Molecule Super-Resolution Microscopy Reveals How Light Couples to a Plasmonic Nanoantenna on the Nanometer Scale
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Single-Molecule Super-Resolution Microscopy Reveals How Light Couples to a Plasmonic Nanoantenna on the Nanometer Scale

机译:单分子超高分辨率显微镜揭示了光如何耦合至纳米尺度上的等离激元纳米天线。

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The greatly enhanced fields near metal nanoparticles have demonstrated remarkable optical properties and are promising for applications from solar energy to biosensing. However, direct experimental study of these light-matter interactions at the nanoscale has remained difficult due to the limitations of optical microscopy. Here, we use single-molecule fluorescence imaging to probe how a plasmonic nanoantenna modifies the fluorescence emission from a dipole emitter. We show that the apparent fluorophore emission position is strongly shifted upon coupling to an antenna and that the emission of dyes located up to 90 nm away is affected by this coupling. To predict this long-ranged effect, we present a framework based on a distance-dependent partial coupling of the dye emission to the antenna. Our direct interpretation of these light-matter interactions will enable more predictably optimized, designed, and controlled plasmonic devices and will permit reliable plasmon-enhanced single-molecule nanoscopy.
机译:金属纳米粒子附近大大增强的场已显示出卓越的光学性能,并有望用于从太阳能到生物传感的应用。但是,由于光学显微镜的局限性,直接在纳米级进行这些光-物质相互作用的直接实验研究仍然很困难。在这里,我们使用单分子荧光成像来探究等离激元纳米天线如何改变偶极发射体的荧光发射。我们表明,表观荧光团的发射位置在与天线耦合时发生强烈位移,而位于最远90 nm处的染料的发射受此耦合的影响。为了预测这种远距离影响,我们提出了一个基于染料发射到天线的距离相关的部分耦合的框架。我们对这些光-质相互作用的直接解释将使人们能够更可预测地优化,设计和控制等离激元器件,并允许进行可靠的等离激元增强单分子纳米显微镜检查。

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