Hefei National Laboratory for Physical Sciences at the Microscale (HFNL), University of Science and Technology of China (USTC), Hefei, Anhui 230026, P R China.
Phys Chem Chem Phys. 2013 Aug 14;15(30):12428-41. doi: 10.1039/c3cp51446c.
Scanning tunnelling microscopy (STM) has been a unique and powerful tool in the study of molecular systems among various microscopic and spectroscopic techniques. This benefits from the local probing ability for the atomically resolved structural and electronic characterization by the STM tip. Moreover, by using the STM tip one can modify a given structure and thus control the physical and chemical properties of molecules at a single-molecule level. The rapid developments in the past 30 years have extended the functions of STM far beyond characterization. It has shown the flexibility to combine STM with other techniques by making use of the advantages of the STM tip, demonstrating important applications in the growing nanotechnology. Here we review some recent progresses in our laboratory on single molecule chemistry by taking advantage of tip-assisted local approaches, such as the identification of specific orbitals or states of molecules on surfaces, tip-induced single-molecule manipulation, atomically resolved chemical reactions in photochemistry and tip-induced electroluminescence. We expect more joint techniques to emerge in the near future by using the unique advantages of STM tip, providing more powerful tools for the growing requirements of new materials design and the mechanism of chemical reactions at the molecular scale.
扫描隧道显微镜(STM)在各种微观和光谱技术中,是研究分子体系的独特而强大的工具。这得益于 STM 尖端具有原子分辨率的结构和电子特性的局部探测能力。此外,通过使用 STM 尖端,人们可以修饰给定的结构,从而在单分子水平上控制分子的物理和化学性质。在过去的 30 年中,STM 的快速发展已经使其功能远远超出了特性描述。它通过利用 STM 尖端的优势,展示了与其他技术相结合的灵活性,在不断发展的纳米技术中显示出了重要的应用。在这里,我们回顾了我们实验室在利用尖端辅助局部方法(如表面上分子特定轨道或状态的识别、尖端诱导的单分子操作、光化学中的原子分辨化学反应和尖端诱导的电致发光)方面的一些最新进展。我们期望在不久的将来,通过利用 STM 尖端的独特优势,出现更多的联合技术,为新材料设计和分子尺度化学反应机制的日益增长的需求提供更强大的工具。