Huang Sheng-Chao, Ye Jiu-Zheng, Shen Xiao-Ru, Zhao Qing-Qing, Zeng Zhi-Cong, Li Mao-Hua, Wu De-Yin, Wang Xiang, Ren Bin
State Key Laboratory of Physical Chemistry of Solid Surface, The MOE Key Laboratory of Spectrochemical Analysis and Instrumentation, Collaborative Innovation Center of Chemistry for Energy Materials (iChEM), College of Chemistry and Chemical Engineering , Xiamen University , Xiamen 361005 , China.
Anal Chem. 2019 Sep 3;91(17):11092-11097. doi: 10.1021/acs.analchem.9b01701. Epub 2019 Aug 12.
Electrochemical tip-enhanced Raman spectroscopy (EC-TERS) appears as a promising in situ nanospectroscopic tool for characterization and understanding of the electrochemical interfacial processes at the nanometer scale and molecular level. However, the wide application of EC-TERS is hampered by its low sensitivity as a result of the optical path distortion due to the refractive index mismatch of the multilayer media (air, glass, and electrolyte). Here, we propose a new side-illumination EC-TERS setup by coupling a water immersion objective with a high numerical aperture to a scanning tunneling microscope scanning head customized with a large open space and a compact spectroelectrochemical cell. It not only effectively eliminates the optical distortion but also increases the sensitivity remarkably, which allows sensitive monitoring of the electrochemical redox processes of anthraquinone molecules. More importantly, EC-TERS is able to independently control the tip position and laser illumination position. By utilizing this feature, we reveal that the irreversible reduction reaction of anthraquinone observed in EC-TERS is induced by the synergistic effect of the negative potential and laser illumination rather than the localized surface plasmon. The highly improved sensitivity and the flexibility to control the tip and laser illumination position on the nanometer scale endows EC-TERS as an important tool for the fundamental understanding of the photo- or plasmon electrochemistry and the interfacial structure-activity relationship of important electrochemical systems.
电化学针尖增强拉曼光谱(EC-TERS)似乎是一种很有前景的原位纳米光谱工具,可用于在纳米尺度和分子水平上表征和理解电化学界面过程。然而,由于多层介质(空气、玻璃和电解质)的折射率失配导致光路畸变,EC-TERS的低灵敏度阻碍了其广泛应用。在此,我们提出了一种新的侧照式EC-TERS装置,将具有高数值孔径的水浸物镜与定制的具有大开放空间和紧凑型光谱电化学池的扫描隧道显微镜扫描头耦合。它不仅有效消除了光学畸变,还显著提高了灵敏度,从而能够灵敏地监测蒽醌分子的电化学氧化还原过程。更重要的是,EC-TERS能够独立控制针尖位置和激光照射位置。利用这一特性,我们揭示了在EC-TERS中观察到的蒽醌不可逆还原反应是由负电位和激光照射的协同效应而非局域表面等离子体激元诱导的。高度提高的灵敏度以及在纳米尺度上控制针尖和激光照射位置的灵活性,使EC-TERS成为深入理解光或等离子体电化学以及重要电化学系统界面结构-活性关系的重要工具。