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Understanding the Adsorption of CuPc and ZnPc on Noble Metal Surfaces by Combining Quantum-Mechanical Modelling and Photoelectron Spectroscopy

机译:结合量子力学建模和光电子能谱了解CuPc和ZnPc在贵金属表面的吸附

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摘要

Phthalocyanines are an important class of organic semiconductors and, thus, their interfaces with metals are both of fundamental and practical relevance. In the present contribution we provide a combined theoretical and experimental study, in which we show that state-of-the-art quantum-mechanical simulations are nowadays capable of treating most properties of such interfaces in a quantitatively reliable manner. This is shown for Cu-phthalocyanine (CuPc) and Zn-phthalocyanine (ZnPc) on Au(111) and Ag(111) surfaces. Using a recently developed approach for efficiently treating van der Waals (vdW) interactions at metal/organic interfaces, we calculate adsorption geometries in excellent agreement with experiments. With these geometries available, we are then able to accurately describe the interfacial electronic structure arising from molecular adsorption. We find that bonding is dominated by vdW forces for all studied interfaces. Concomitantly, charge rearrangements on Au(111) are exclusively due to Pauli pushback. On Ag(111), we additionally observe charge transfer from the metal to one of the spin-channels associated with the lowest unoccupied π-states of the molecules. Comparing the interfacial density of states with our ultraviolet photoelectron spectroscopy (UPS) experiments, we find that the use of a hybrid functionals is necessary to obtain the correct order of the electronic states.
机译:酞菁是一类重要的有机半导体,因此,它们与金属的界面具有基本和实际的意义。在当前的贡献中,我们提供了理论和实验相结合的研究,其中我们表明,当今最先进的量子力学模拟能够以定量可靠的方式处理此类界面的大多数特性。对于Au(111)和Ag(111)表面上的Cu-酞菁(CuPc)和Zn-酞菁(ZnPc)而言,显示了这一点。使用最近开发的有效处理金属/有机界面处的范德华(vdW)相互作用的方法,我们计算出的吸附几何形状与实验非常吻合。有了这些可用的几何形状,我们便能够准确地描述由于分子吸附而产生的界面电子结构。我们发现,对于所有研究的接口,绑定均受vdW力支配。同时,Au(111)上的电荷重排完全是由于Pauli的后推。在Ag(111)上,我们还观察到电荷从金属转移到与分子的最低未占据π状态相关的自旋通道之一。将状态的界面密度与我们的紫外光电子能谱(UPS)实验进行比较,我们发现使用混合功能对于获得正确的电子状态顺序是必要的。

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