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Multidimensional Characterization of Single-Molecule Dynamics in a Plasmonic Nanocavity

机译:等离子体纳米岩中单分子动力学的多维特征

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Nanoscale manipulation and characterization of individual molecules is necessary to understand the intricacies of molecular structure, which governs phenomena such as reaction mechanisms, catalysis, local effective temperatures, surface interactions, and charge transport. Here we utilize Raman enhancement between two nanostructured electrodes in combination with direct charge transport measurements to allow for simultaneous characterization of the electrical, optical, and mechanical properties of a single molecule. This multi-dimensional information yields repeatable, self-consistent, verification of single-molecule resolution, and allows for detailed analysis of structural and configurational changes of the molecule in situ. These experimental results are supported by a machine-learning based statistical analysis of the spectral information and calculations to provide insight into the correlation between structural changes in a single-molecule and its charge-transport properties.
机译:为了理解分子结构的复杂性,需要对单个分子进行纳米级操纵和表征,分子结构控制着反应机制、催化作用、局部有效温度、表面相互作用和电荷传输等现象。在这里,我们利用两个纳米结构电极之间的拉曼增强,结合直接电荷传输测量,来同时表征单个分子的电学、光学和机械性能。这种多维信息产生了可重复的、自洽的单分子分辨率验证,并允许对原位分子的结构和构型变化进行详细分析。这些实验结果得到了基于机器学习的光谱信息统计分析和计算的支持,以深入了解单个分子的结构变化与其电荷传输特性之间的相关性。

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