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Quantitative Single-Molecule Surface-Enhanced Raman Scattering by Optothermal Tuning of DNA Origami-Assembled Plasmonic Nanoantennas

机译:通过DNA折纸组装等离子体纳米烯烃的光热调谐,定量单分子表面增强拉曼散射

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摘要

DNA origami is a powerful approach for assembling plasmonic nanoparticle dimers and Raman dyes with high yields and excellent positioning control. Here we show how optothermal induced shrinking of a DNA origami template can be employed to control the gap sizes between two 40 nm gold nanoparticles in a range of 1 nm – 2 nm. The high field confinement achieved with this optothermal approach was demonstrated by detection of surface-enhanced Raman spectroscopy (SERS) signals from single molecules that are precisely placed within the DNA origami template that spans the nanoparticle gap. By comparing the SERS intensity with respect to the field enhancement in the plasmonic hotspot region, we found good agreement between measurement and theory. Our straightforward approach for the fabrication of addressable plasmonic nanosensors by DNA origami demonstrates a path toward future sensing applications with single-molecule resolution.
机译:DNA折纸是一种强大的方法,用于组装等离子体纳米粒子二聚体和具有高产率和优异定位控制的拉曼染料。在这里,我们展示了DNA折纸模板的光热诱导的诱导的收缩可以用于控制在1nm-2nm的两个40nm金纳米颗粒之间的间隙尺寸。通过检测来自单个分子的表面增强的拉曼光谱(SERS)信号来证明通过这种光学热方法实现的高场限制,该信号从单分子中精确地放置在跨越纳米粒子间隙的DNA折纸模板内。通过将SERS强度与等离子体热点区域的野外增强相比进行比较,我们在测量和理论之间找到了良好的一致性。我们通过DNA折纸制备可寻址等离子体纳米调传料的直接方法证明了具有单分子分辨率的未来感测应用的路径。

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