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首页> 外文期刊>Chemical Society Reviews >Enhanced single-molecule spectroscopy in highly confined optical fields: from λ/2-Fabry-Perot resonators to plasmonic nano-antennas
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Enhanced single-molecule spectroscopy in highly confined optical fields: from λ/2-Fabry-Perot resonators to plasmonic nano-antennas

机译:高度受限的光学领域中的增强型单分子光谱:从λ/ 2-Fabry-Perot谐振器到等离激元纳米天线

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摘要

While single-molecule fluorescence from emitters with high quantum efficiencies such as organic dye molecules can easily be detected by modern apparatus, many less efficient emission processes such as Raman scattering and metal luminescence require dramatic enhancement to exceed the single-particle detection limit. This enhancement can be achieved using resonant optical systems such as plasmonic particles or nanoantennas, the study of which has led to substantial progress in understanding the interaction of quantum emitters with their electromagnetic environment. This review is focused on the advances in measurement techniques and potential applications enabled by a deeper understanding of fundamental optical interaction processes occurring between single quantum systems on the nanoscale. While the affected phenomena are numerous, including molecular fluorescence and also exciton luminescence and Raman scattering, the interaction itself can often be described from a unified point of view. Starting from a single underlying model, this work elucidates the dramatic enhancement potential of plasmonic tips and nanoparticles and also the more deterministic influence of a Fabry-Perot microresonator. With the extensive knowledge of the radiative behavior of a quantum system, insight can be gained into nonradiative factors as well, such as energy transfer phenomena or spatial and chemical configurations in single molecules.
机译:现代设备可以轻松检测来自具有高量子效率的发射体(例如有机染料分子)的单分子荧光,而许多效率较低的发射过程(如拉曼散射和金属发光)则需要显着增强才能超过单颗粒检测极限。这种增强可以使用诸如等离子粒子或纳米天线之类的共振光学系统来实现,其研究已导致在理解量子发射器与其电磁环境之间的相互作用方面取得了实质性进展。这篇综述的重点是通过对纳米尺度上单个量子系统之间发生的基本光学相互作用过程的更深入了解而实现的测量技术和潜在应用的进步。尽管受影响的现象很多,包括分子荧光以及激子发光和拉曼散射,但相互作用本身通常可以从统一的角度进行描述。从单个基础模型开始,这项工作阐明了等离子体尖端和纳米颗粒的显着增强潜力,以及Fabry-Perot微谐振器的更具确定性的影响。借助对量子系统辐射行为的广泛了解,还可以洞悉非辐射因素,例如能量转移现象或单个分子中的空间和化学构型。

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