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卤代苯在铜表面吸附的卤素及结构敏感性

Halogen and structure sensitivity of halobenzene adsorption on copper surfaces.

作者信息

Schunke Christina, Miller Daniel P, Zurek Eva, Morgenstern Karina

机构信息

Ruhr-Universität Bochum, Lehrstuhl für Physikalische Chemie I, Universitässtraße 150, D-44803 Bochum, Germany.

Hofstra University, Department of Chemistry, 106 Berliner Hall, Hempstead, NY 11549, USA.

出版信息

Phys Chem Chem Phys. 2022 Feb 16;24(7):4485-4492. doi: 10.1039/d1cp05660c.

Abstract

The adsorption orientation of molecules on surfaces influences their reactivity, but it is still challenging to tailor the interactions that govern their orientation. Here, we investigate how the substituent and the surface structure alter the adsorption orientation of halogenated benzene molecules from parallel to tilted relative to the surface plane. The deviation of the parallel orientation of bromo-, chloro-, and fluorobenzene molecules adsorbed on Cu(111) and Cu(110) surfaces is determined, utilising the surface selection rule in reflection-absorption infrared spectroscopy. On Cu(111), all three halogenated molecules are adsorbed with their molecular plane almost parallel to the surface at low coverages. However, they are tilted at higher coverages; yet, the threshold coverages differ. On Cu(110), merely bromo- and chlorobenzene follow this trend, albeit with a lower threshold for both. In contrast, fluorobenzene molecules are tilted already at low coverages. The substantial influence of the halogen atom and the surface structure on the adsorption orientation, resulting from an interplay of molecule-molecule and molecule-surface interactions, is highly relevant for reactivity confined to two dimensions.

摘要

分子在表面上的吸附取向会影响其反应活性,但定制控制其取向的相互作用仍然具有挑战性。在这里,我们研究取代基和表面结构如何改变卤代苯分子相对于表面平面从平行到倾斜的吸附取向。利用反射吸收红外光谱中的表面选择规则,确定了吸附在Cu(111)和Cu(110)表面上的溴苯、氯苯和氟苯分子平行取向的偏差。在Cu(111)上,所有三种卤代分子在低覆盖度下吸附时其分子平面几乎与表面平行。然而,在较高覆盖度下它们会倾斜;不过,阈值覆盖度有所不同。在Cu(110)上,只有溴苯和氯苯遵循这种趋势,尽管两者的阈值都较低。相比之下,氟苯分子在低覆盖度时就已经倾斜。分子 - 分子和分子 - 表面相互作用的相互作用导致卤原子和表面结构对吸附取向有重大影响,这对于二维受限的反应活性高度相关。

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