论文标题

使用离轴抛物线镜在超高真空中在液体HE处偏光尖端增强的拉曼光谱

Polarized tip-enhanced Raman spectroscopy at liquid He temperature in ultrahigh vacuum using an off-axis parabolic mirror

论文作者

Peis, Leander, He, Ge, Jost, Daniel, Rager, Gabriele, Hackl, Rudi

论文摘要

尖端增强的拉曼光谱(TERS)结合了在衍射极限以下的非弹性散射到纳米范围和扫描探针显微镜以及可能的光谱法。这样,可以同时收集地形和光谱以及单粒子和两粒子信息。尽管现在可以成功地研究单个分子,但散装固体仍然无法有意义地访问。这是此处介绍的工作的目的,以概述实现这一目标的方法。我们描述了一个自制的液态氦气冷却,超高真空尖端增强的拉曼光谱系统(LHE-UHV-TERS)。该设置基于扫描隧道显微镜,作为创新,副抛物线镜的高数值光圈约为$ 0.85 $,并且工作距离很大。该系统配备了一个快速负载锁室,用于\ textIt {intu}的腔室,准备尖端,底物和样品以及一个ters腔室。 TERS室中的基本压力和温度分别为$ 3 \ times 10^{-11} $ 〜MBAR和15〜K。碳纳米管振动模式的偏振依赖性尖端增强的拉曼光谱在低温温度下成功获得。观察到$ 10^7 $的增强因子。此处描述的新功能包括非常低的压力和温度以及对光极极化的外部通道,因此选择规则可能为研究散装和表面材料的研究铺平了道路。

Tip-enhanced Raman spectroscopy (TERS) combines inelastic light scattering well below the diffraction limit down to the nanometer range and scanning probe microscopy and, possibly, spectroscopy. In this way, topographic and spectroscopic as well as single- and two-particle information may simultaneously be collected. While single molecules can now be studied successfully, bulk solids are still not meaningfully accessible. It is the purpose of the work presented here to outline approaches toward this objective. We describe a home-built, liquid helium cooled, ultrahigh vacuum tip-enhanced Raman spectroscopy system (LHe-UHV-TERS). The setup is based on a scanning tunneling microscope and, as an innovation, an off-axis parabolic mirror having a high numerical aperture of approximately $0.85$ and a large working distance. The system is equipped with a fast load-lock chamber, a chamber for the \textit{in situ} preparation of tips, substrates, and samples, and a TERS chamber. Base pressure and temperature in the TERS chamber were approximately $3\times 10^{-11}$~mbar and 15~K, respectively. Polarization dependent tip-enhanced Raman spectra of the vibration modes of carbon nanotubes were successfully acquired at cryogenic temperature. Enhancement factors in the range of $10^7$ were observed. The new features described here including very low pressure and temperature and the external access to the light polarizations, thus the selection rules, may pave the way towards the investigation of bulk and surface materials.

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