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匹配纳米天线场限制与Förster 能量转移距离,提高Förster 能量转移速率。

Matching Nanoantenna Field Confinement to FRET Distances Enhances Förster Energy Transfer Rates.

机构信息

CNRS, Aix-Marseille Université, Centrale Marseille, Institut Fresnel, UMR 7249, 13013 Marseille, France.

ICFO-Institut de Ciencies Fotoniques, Mediterranean Technology Park, 08860 Castelldefels, Spain.

出版信息

Nano Lett. 2015 Sep 9;15(9):6193-201. doi: 10.1021/acs.nanolett.5b02535. Epub 2015 Aug 5.

Abstract

Förster resonance energy transfer (FRET) is widely applied in chemistry, biology, and nanosciences to assess distances on sub-10 nm scale. Extending the range and applicability of FRET requires enhancement of the fluorescence energy transfer at a spatial scale comparable to the donor-acceptor distances. Plasmonic nanoantennas are ideal to concentrate optical fields at a nanoscale fully matching the FRET distance range. Here, we present a resonant aluminum nanogap antenna tailored to enhance single molecule FRET. A 20 nm gap confines light into a nanoscale volume, providing a field gradient on the scale of the donor-acceptor distance, a large 10-fold increase in the local density of optical states, and strong intensity enhancement. With our dedicated design, we obtain 20-fold enhancement on the fluorescence emission of donor and acceptor dyes, and most importantly up to 5-fold enhancement of the FRET rate for donor-acceptor separations of 10 nm. We also provide a thorough framework of the fluorescence photophysics occurring in the nanoscale gap volume. The presented enhancement of energy transfer flow at the nanoscale opens a yet unexplored facet of the various advantages of optical nanoantennas and provides a new strategy toward biological applications of single molecule FRET at micromolar concentrations.

摘要

Förster 共振能量转移(FRET)广泛应用于化学、生物学和纳米科学领域,用于评估亚 10nm 尺度的距离。扩展 FRET 的范围和适用性需要在与供体-受体距离相当的空间尺度上增强荧光能量转移。等离子体纳米天线非常适合在完全匹配 FRET 距离范围的纳米尺度上集中光学场。在这里,我们提出了一种经过优化设计的共振铝纳米间隙天线,用于增强单分子 FRET。20nm 的间隙将光限制在纳米级体积内,提供与供体-受体距离相当的场梯度,光学态的局部密度增加了 10 倍,强度得到了强烈增强。通过我们的专用设计,我们获得了供体和受体染料荧光发射的 20 倍增强,最重要的是,对于 10nm 的供体-受体分离,FRET 速率提高了 5 倍。我们还提供了在纳米级间隙体积中发生的荧光光物理的彻底框架。在纳米尺度上能量转移流的增强开辟了光学纳米天线各种优势的一个尚未被探索的方面,并为在微摩尔浓度下进行单分子 FRET 的生物应用提供了一种新策略。

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