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Observation of multiple vibrational modes in ultrahigh vacuum tip-enhanced Raman spectroscopy combined with molecular-resolution scanning tunneling microscopy

机译:结合分子分辨率扫描隧道显微镜在超高真空尖端增强拉曼光谱中观察多种振动模式

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摘要

Multiple vibrational modes have been observed for copper phthalocyanine (CuPc) adlayers on Ag(111) using ultrahigh vacuum (UHV) tip-enhanced Raman spectroscopy (TERS). Several important new experimental features are introduced in this work that significantly advance the state-of-the-art in UHV-TERS. These include (1) concurrent sub-nm molecular resolution STM imaging using Ag tips with laser illumination of the tip-sample junction, (2) laser focusing and Raman collection optics that are external to the UHV-STM that has two cryoshrouds for future low temperature experiments, and (3) all sample preparation steps are carried out in UHV to minimize contamination and maximize spatial resolution. Using this apparatus we have been able to demonstrate a TERS enhancement factor of 7.1 × 10 ~5. Further, density-functional theory calculations have been carried out that allow quantitative identification of eight different vibrational modes in the TER spectra. The combination of molecular-resolution UHV-STM imaging with the detailed chemical information content of UHV-TERS allows the interactions between large polyatomic molecular adsorbates and specific binding sites on solid surfaces to be probed with unprecedented spatial and spectroscopic resolution.
机译:使用超高真空(UHV)尖端增强拉曼光谱(TERS),已观察到Ag(111)上的铜酞菁(CuPc)附加层具有多种振动模式。这项工作引入了几个重要的新实验功能,这些功能极大地推动了特高压TERS技术的发展。其中包括(1)使用Ag尖端同时进行亚纳米分子分辨率STM成像以及尖端样品结的激光照射;(2)UHV-STM外部的激光聚焦和拉曼采集光学器件,具有两个冷冻罩以降低未来的低温(3)所有样品制备步骤均在超高压中进行,以最大程度地减少污染并最大化空间分辨率。使用该设备,我们已经能够证明TERS增强因子为7.1×10〜5。此外,已经进行了密度泛函理论计算,从而可以定量识别TER光谱中的八个不同的振动模式。分子分辨率的UHV-STM成像与UHV-TERS的详细化学信息含量相结合,可以以空前的空间和光谱分辨率探测大型多原子分子吸附物与固体表面上特定结合位点之间的相互作用。

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