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四吡啶基卟啉分子在铜(111)表面的构象适应与选择性吸附原子捕获

Conformational adaptation and selective adatom capturing of tetrapyridyl-porphyrin molecules on a copper (111) surface.

作者信息

Auwärter Willi, Klappenberger Florian, Weber-Bargioni Alexander, Schiffrin Agustin, Strunskus Thomas, Wöll Christof, Pennec Yan, Riemann Andreas, Barth Johannes V

机构信息

Department of Chemistry, University of British Columbia, Vancouver, BC V6T1Z4, Canada.

出版信息

J Am Chem Soc. 2007 Sep 12;129(36):11279-85. doi: 10.1021/ja071572n. Epub 2007 Aug 18.

Abstract

We present a combined low-temperature scanning tunneling microscopy and near-edge X-ray adsorption fine structure study on the interaction of tetrapyridyl-porphyrin (TPyP) molecules with a Cu(111) surface. A novel approach using data from complementary experimental techniques and charge density calculations allows us to determine the adsorption geometry of TPyP on Cu(111). The molecules are centered on "bridge" sites of the substrate lattice and exhibit a strong deformation involving a saddle-shaped macrocycle distortion as well as considerable rotation and tilting of the meso-substituents. We propose a bonding mechanism based on the pyridyl-surface interaction, which mediates the molecular deformation upon adsorption. Accordingly, a functionalization by pyridyl groups opens up pathways to control the anchoring of large organic molecules on metal surfaces and tune their conformational state. Furthermore, we demonstrate that the affinity of the terminal groups for metal centers permits the selective capture of individual iron atoms at low temperature.

摘要

我们展示了一项结合低温扫描隧道显微镜和近边X射线吸收精细结构的研究,该研究针对四吡啶基卟啉(TPyP)分子与Cu(111)表面的相互作用。一种使用来自互补实验技术的数据和电荷密度计算的新方法,使我们能够确定TPyP在Cu(111)上的吸附几何结构。这些分子以衬底晶格的“桥”位为中心,并表现出强烈的变形,包括鞍形大环畸变以及中位取代基的显著旋转和倾斜。我们提出了一种基于吡啶基-表面相互作用的键合机制,该机制介导吸附时的分子变形。因此,吡啶基官能化开辟了控制大有机分子在金属表面的锚定并调节其构象状态的途径。此外,我们证明了端基对金属中心的亲和力允许在低温下选择性捕获单个铁原子。

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