Queck Fabian, Krejčí Ondrej, Scheuerer Philipp, Bolland Felix, Otyepka Michal, Jelínek Pavel, Repp Jascha
Department of Physics , University of Regensburg , 93053 Regensburg , Germany.
Institute of Physics of the Czech Academy of Science , CZ-16253 Praha , Czech Republic.
J Am Chem Soc. 2018 Oct 10;140(40):12884-12889. doi: 10.1021/jacs.8b06765. Epub 2018 Oct 2.
The bonds in metal organic networks on surfaces govern the resulting geometry as well as the electronic properties. Here, we study the nature of these bonds by forming phenazine-copper complexes on a copper surface by means of atomic manipulation. The structures are characterized by a combination of scanning probe microscopy and density functional theory calculations. We observed an increase of the molecule-substrate distance upon covalent bond formation and an out-of-plane geometry that is in direct contradiction with the common expectation that these networks are steered by coordination bonds. Instead, we find that a complex energy balance of hybridization with the substrate, inhomogeneous Pauli repulsion, and elastic deformation drives the phenazine-copper interaction. Most remarkably, this attractive interaction is not driven by electron acceptor properties of copper but is of completely different donation/back-donation mechanism between molecular π-like orbitals and sp-like metal states. Our findings show that the nature of bonds between constituents adsorbed on surfaces does not have to follow the common categories.
表面金属有机网络中的键决定了其最终的几何结构以及电子性质。在此,我们通过原子操纵在铜表面形成吩嗪 - 铜配合物来研究这些键的本质。这些结构通过扫描探针显微镜和密度泛函理论计算相结合的方式进行表征。我们观察到共价键形成时分子 - 底物距离增加,并且平面外几何结构与这些网络由配位键主导的普遍预期直接矛盾。相反,我们发现与底物的杂化、不均匀的泡利排斥和弹性变形之间复杂的能量平衡驱动了吩嗪 - 铜相互作用。最显著的是,这种吸引相互作用不是由铜的电子受体性质驱动的,而是分子类π轨道和类sp金属态之间完全不同的给予/反馈给予机制。我们的研究结果表明,吸附在表面的成分之间的键的本质不一定遵循常见的类别。