首页> 外文期刊>The journal of physical chemistry, C. Nanomaterials and interfaces >Understanding the Rotational Mechanism of a Single Molecule: STM and DFT Investigations of Dimethyl Sulfide Molecular Rotors on Au(111)
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Understanding the Rotational Mechanism of a Single Molecule: STM and DFT Investigations of Dimethyl Sulfide Molecular Rotors on Au(111)

机译:了解单一分子的旋转机制:Au(111)对二甲硫醚分子转子的STM和DFT调查

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摘要

Thioether molecules are an ideal surface-mounted rotor system that allows many fundamental properties of molecular rotors to be studied and quantified. Recent work on thioether molecular rotors has revealed that their rotation can be controlled thermally, electrically, and mechanically. This study combines scanning tunneling microscopy experiments and density functional theory calculations to investigate the rotational properties of a simple thioether molecule, dimethyl sulfide. Experimental studies showed a very low barrier to rotation for dimethyl sulfide (it rotated > 10~3 Hz at 5 K) and this barrier was calculated theoretically. Also, using theoretical methods the minimum energy adsorption site was determined and the mechanism of rotation was elucidated. Our results indicate that the rotation of a small, simple molecule is actually rather complex; as the CH3 groups of dimethyl sulfide rotate around the Au-S bond, the central S atom precesses around a surface Au atom.
机译:硫醚分子是理想的表面安装转子系统,允许研究和量化分子转子的许多基本性质。 最近的硫醚分子转子的工作透露,它们的旋转可以热,电气和机械地控制。 该研究结合了扫描隧道显微镜实验和密度泛函理论计算,研究了简单硫醚分子,二甲基硫化物的旋转性质。 实验研究表明,对于二甲基硫化物(其旋转> 10〜3Hz,在5 k下旋转> 10〜3 Hz),理论上计算该屏障。 此外,使用理论方法确定最小能量吸附部位,并阐明了旋转机制。 我们的结果表明,小,简单的分子的旋转实际上是相当复杂的; 作为CH3的二甲基硫醚基团围绕AU-S键旋转,中央的S原子围绕表面Au原子。

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