Xie Zhen, Duan Sai, Wang Chuan-Kui, Luo Yi
Shandong Province Key Laboratory of Medical Physics and Image Processing Technology, School of Physics and Electronics, Shandong Normal University, Jinan 250014, People's Republic of China.
Nanoscale. 2020 May 21;12(19):10474-10479. doi: 10.1039/d0nr01629b. Epub 2020 May 6.
Switchable trans-cis isomerization of azobenzene (AB) and its derivatives on metallic surfaces have offered rich possibilities to functionalize molecular devices. However, the lack of a good understanding of the isomerization pathway has severely limited our ability for rational design. One of the long-debated issues is the cis configuration of the parental AB on the Au(111) surface, for which the experimentally inferred structure differs from the theoretically predicted global minimum. Here, we theoretically identify a new in situ metastable configuration for cis-AB on Au(111) that can reproduce all the observations reported in the scanning tunneling microscopy experiments. It reveals that the bistability of AB on the Au(111) surface is attributed to the significantly increased kinetic stability of the newly discovered cis-AB isomer. A fascinating tumbling pathway that overcomes two energy barriers stimulated by tunneling electrons for the trans-cis AB isomerization on Au(111) has been verified, suggesting a new type of molecular motion based on the AB systems.
偶氮苯(AB)及其衍生物在金属表面的可切换反式-顺式异构化,为分子器件功能化提供了丰富的可能性。然而,对异构化途径缺乏深入了解,严重限制了我们进行合理设计的能力。长期以来备受争议的问题之一是母体AB在Au(111)表面的顺式构型,实验推断的结构与理论预测的全局最小值不同。在此,我们从理论上确定了Au(111)表面顺式-AB的一种新的原位亚稳构型,它可以重现扫描隧道显微镜实验中报道的所有观察结果。结果表明,AB在Au(111)表面的双稳态归因于新发现的顺式-AB异构体动力学稳定性的显著提高。已证实了一种引人入胜的翻滚途径,该途径克服了由隧穿电子激发的两个能垒,实现了Au(111)上反式-顺式AB异构化,这表明基于AB体系的一种新型分子运动。