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单分子表面增强拉曼散射作为单分子表面反应的探针:前景与当前挑战。

Single-Molecule Surface-Enhanced Raman Scattering as a Probe of Single-Molecule Surface Reactions: Promises and Current Challenges.

机构信息

Department of Chemistry , Kunsan National University , Gunsan , Jeonbuk 54150 , Korea.

Department of Chemistry , Seoul National University , Seoul 08826 , Korea.

出版信息

Acc Chem Res. 2019 Nov 19;52(11):3008-3017. doi: 10.1021/acs.accounts.9b00358. Epub 2019 Oct 14.

Abstract

The initial observations of surface-enhanced Raman scattering (SERS) from individual molecules (single-molecule SERS, SMSERS) have triggered ever more detailed mechanistic studies on the SERS process. The studies not only reveal the existence of extremely enhanced and confined fields at the gaps of Ag or Au nanoparticles but also reveal that the spatial, spectral, and temporal behaviors of the SMSERS signal critically depend on many factors, including plasmon resonances of nanostructures, diffusion (lateral and orientational) of molecules, molecular electronic resonances, and metal-molecule charge transfers. SMSERS spectra, with their , should in principle provide molecule-specific information on individual molecules in a way that any other existing single-molecule detection method (such as the ones based on fluorescence, mechanical forces, or electrical currents) cannot. Therefore, by following the spectro-temporal evolution of SMSERS signals of reacting molecules, one should be able to follow chemical reaction events of individual molecules without any additional labels. Despite such potential, however, real applications of SMSERS for single-molecule chemistry and analytical chemistry are scarce. In this Account, we discuss whether and how we can use SMSERS to monitor single-molecule chemical kinetics. The central problem lies in the experimental challenges of separately characterizing and controlling various sources of fluctuations and spatial variations in such a way that we can extract only the chemically relevant information from time-varying SMSERS signals. This Account is organized as follows. First, we outline the standard theory of SMSERS, providing an essential guide for identifying sources of spatial heterogeneity and temporal fluctuations in SMSERS signals. Second, we show how single-molecule reaction events of surface-immobilized reactants manifest themselves in experimental SMSERS trajectories. Comparison of the reactive SMSERS data (magnitudes and frequencies of discrete transitions) and the predictions of SMSERS models also allow us to assess how faithfully the SMSERS models represent reality. Third, we show how SMSERS spectral features can be used to discover new reaction intermediates and to interrogate metal-molecule electronic interactions. Finally, we propose possible improvements in experimental design (including nanogap structures and molecular systems) to make SMSERS applicable to a broader range of chemical reactions occurring under ambient conditions. The specific examples discussed in this Account are centered around the single-molecule photochemistry of 4-nitrobenzenethiol on metals, but the conclusions drawn from each example are generally applicable to any reaction system involving small organic molecules.

摘要

表面增强拉曼散射(SERS)的单个分子(单分子 SERS,SMSERS)的初始观察引发了对 SERS 过程的更详细的机制研究。这些研究不仅揭示了在 Ag 或 Au 纳米粒子的间隙中存在极其增强和受限的场,而且还揭示了 SMSERS 信号的空间、光谱和时间行为极大地取决于许多因素,包括纳米结构的等离子体共振、分子的扩散(横向和取向)、分子的电子共振以及金属-分子电荷转移。SMSERS 光谱,由于其 ,原则上应该以任何其他现有单分子检测方法(例如基于荧光、机械力或电流的方法)无法实现的方式提供单个分子的分子特异性信息。因此,通过跟踪反应分子的 SMSERS 信号的光谱-时间演变,应该能够在不使用任何其他标签的情况下跟踪单个分子的化学反应事件。然而,尽管有这种潜力,SMSERS 用于单分子化学和分析化学的实际应用仍然很少。在本账户中,我们讨论了我们是否以及如何能够使用 SMSERS 来监测单分子化学动力学。核心问题在于以能够从时变 SMSERS 信号中提取仅与化学相关的信息的方式分别表征和控制各种波动和空间变化源的实验挑战。本账户的组织如下。首先,我们概述了 SMSERS 的标准理论,为识别 SMSERS 信号中空间异质性和时间波动的来源提供了必要的指导。其次,我们展示了表面固定反应物的单分子反应事件如何在实验 SMSERS 轨迹中表现出来。比较反应性 SMSERS 数据(离散跃迁的幅度和频率)和 SMSERS 模型的预测也使我们能够评估 SMSERS 模型如何真实地代表现实。第三,我们展示了如何使用 SMSERS 光谱特征来发现新的反应中间体并探究金属-分子电子相互作用。最后,我们提出了改进实验设计(包括纳米间隙结构和分子系统)的可能方案,以使 SMSERS 能够更广泛地应用于在环境条件下发生的化学反应。本账户中讨论的具体示例以金属上 4-硝基苯硫醇的单分子光化学为中心,但从每个示例中得出的结论通常适用于涉及小分子有机分子的任何反应系统。

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