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Atomic Force Microscopy for Molecular Structure Elucidation

机译:用于分子结构阐明的原子力显微镜

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Using scanning probe microscopy techniques, at low temperatures and in ultrahigh vacuum, individual molecules adsorbed on surfaces can be probed with ultrahigh resolution to determine their structure and details of their conformation, configuration, charge states, aromaticity, and the contributions of resonance structures. Functionalizing the tip of an atomic force microscope with a CO molecule enabled atomic-resolution imaging of single molecules, and measurement of their adsorption geometry and bond-order relations. In addition, by using scanning tunneling microscopy and Kelvin probe force microscopy, the density of the molecular frontier orbitals and the electric charge distribution within molecules can be mapped. Combining these techniques yields a high-resolution tool for the identification and characterization of individual molecules. The single-molecule sensitivity and the possibility of atom manipulation to induce chemical reactions with the tip of the microscope open up unique applications in chemistry, and differentiate scanning probe microscopy from conventional methods for molecular structure elucidation. Besides being an aid for challenging cases in natural product identification, atomic force microscopy has been shown to be a powerful tool for the investigation of on-surface reactions and the characterization of radicals and molecular mixtures. Herein we review the progress that high-resolution scanning probe microscopy with functionalized tips has made for molecular structure identification and characterization, and discuss the challenges it will face in the years to come.
机译:使用扫描探针显微镜技术,在低温和超高真空中,可以用超高分辨率探测吸附在表面上的个体分子,以确定它们的结构和细节的构象,配置,充电状态,芳香性和谐振结构的贡献。用CO分子使原子力显微镜的尖端官能化,使单分子的原子分辨率成像,以及它们的吸附几何形状和键合关系的测量。另外,通过使用扫描隧道显微镜和凯尔文探针力学显微镜,可以映射分子前轨道的密度和分子内的电荷分布。组合这些技术产生了高分辨率工具,用于鉴定和表征个体分子。单分子敏感性和原子操纵的可能性,以诱导显微镜尖端的化学反应,在化学中开辟了独特的应用,并将扫描探针显微镜从常规方法分化为分子结构阐明。除了辅助天然产品鉴定的挑战性案例外,原子力显微镜被证明是对表面反应调查的强大工具和自由基和分子混合物的表征。在此,我们回顾了高分辨率扫描探针显微镜与功能化提示的进展已经用于分子结构鉴定和表征,并讨论将在未来几年面临的挑战。

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