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用简单且坚固的混合纳米孔径增强单分子荧光光谱

Enhancing Single-Molecule Fluorescence Spectroscopy with Simple and Robust Hybrid Nanoapertures.

作者信息

Kotnala Abhay, Ding Hongru, Zheng Yuebing

机构信息

Walker Department of Mechanical Engineering and Texas Material Institute, The University of Texas at Austin, Austin, Texas 78712, United States.

Walker Department of Mechanical Engineering, The University of Texas at Austin, Austin, Texas 78712, United States.

出版信息

ACS Photonics. 2021 Jun 16;8(6):1673-1682. doi: 10.1021/acsphotonics.1c00045. Epub 2021 May 18.

Abstract

Plasmonic nanoapertures have found exciting applications in optical sensing, spectroscopy, imaging, and nanomanipulation. The subdiffraction optical field localization, reduced detection volume (~attoliters), and background-free operation make them particularly attractive for single-particle and single-molecule studies. However, in contrast to the high field enhancements by traditional "nanoantenna"-based structures, small field enhancement in conventional nanoapertures results in weak light-matter interactions and thus small enhancement of spectroscopic signals (such as fluorescence and Raman signals) of the analytes interacting with the nanoapertures. In this work, we propose a hybrid nanoaperture design termed "gold-nanoislands-embedded nanoaperture" (AuNIs-e-NA), which provides multiple electromagnetic "hotspots" within the nanoaperture to achieve field enhancements of up to 4000. The AuNIs-e-NA was able to improve the fluorescence signals by more than 2 orders of magnitude with respect to a conventional nanoaperture. With simple design and easy fabrication, along with strong signal enhancements and operability over variable light wavelengths and polarizations, the AuNIs-e-NA will serve as a robust platform for surface-enhanced optical sensing, imaging, and spectroscopy.

摘要

等离子体纳米孔径在光学传感、光谱学、成像和纳米操纵等领域有着令人兴奋的应用。亚衍射光学场定位、减小的检测体积(约阿托升)以及无背景操作使其在单粒子和单分子研究中极具吸引力。然而,与基于传统“纳米天线”结构的高场增强不同,传统纳米孔径中的场增强较小,导致光与物质的相互作用较弱,因此与纳米孔径相互作用的分析物的光谱信号(如荧光和拉曼信号)增强较小。在这项工作中,我们提出了一种混合纳米孔径设计,称为“嵌入金纳米岛的纳米孔径”(AuNIs-e-NA),它在纳米孔径内提供多个电磁“热点”,以实现高达4000的场增强。相对于传统纳米孔径,AuNIs-e-NA能够将荧光信号提高两个多数量级。凭借简单的设计和易于制造,以及在可变光波长和偏振下的强信号增强和可操作性,AuNIs-e-NA将成为表面增强光学传感、成像和光谱学的强大平台。

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