论文标题

PTCDA在SN-AG表面合金上的垂直粘结距离和界面带结构

Vertical bonding distances and interfacial band structure of PTCDA on a Sn-Ag surface alloy

论文作者

Seidel, Johannes, Kelly, Leah L., Franke, Markus, Kumpf, Christian, Cinchetti, Mirko, Aeschlimann, Martin, Stadtmüller, Benjamin

论文摘要

分子材料为新型电子和自旋设备提供了各种功能。改变或替代有机分子或金属底物的独特可能性为几乎所有所需的应用领域修改和优化界面特性提供了机会。因此,我们通过表面合金扩展了成功控制分子界面的方法。我们介绍了原型分子PTCDA和Ag(111)单晶表面生长的SN-AG表面合金之间形成的界面的结构和电子性质的全面表征。我们使用正常的入射率X射线驻波技术与动量分辨的光电学光谱相结合,监测表面合金原子和电子价带结构的吸附高度的变化。我们发现,与我们最近对PTCDA对PBAG $ _2 $ _2 $表面合金的研究相反,nag $ _2 $表面合金的垂直屈曲和表面结构不会改变一层PTCDA。莱特牧师。 117,096805(2016)]。另外,PTCDA和界面能级对齐的垂直吸附几何形状表明分子与表面合金之间没有任何化学相互作用。我们将这些PTCDA/表面合金接口的不同相互作用归因于PTCDA氧原子和表面原子之间的局部$σ$键。将我们的发现与文献的结果相结合,我们能够通过通过有机分子的吸附来设计合金的表面带结构的经验性规则。

Molecular materials enable a vast variety of functionalities for novel electronic and spintronic devices. The unique possibility to alter or substitute organic molecules or metallic substrates offers the opportunity to modify and optimize interfacial properties for almost any desired field of application. For this reason, we extend the successful approach to control molecular interfaces by surface alloying. We present a comprehensive characterization of the structural and electronic properties of the interface formed between the prototypical molecule PTCDA and a Sn-Ag surface alloy grown on an Ag(111) single crystal surface. We monitor the changes of adsorption height of the surface alloy atoms and electronic valence band structure upon adsorption of one layer of PTCDA using the normal incidence x-ray standing wave technique in combination with momentum-resolved photoelectron spectroscopy. We find that the vertical buckling and the surface band structure of the SnAg$_2$ surface alloy is not altered by the adsorption of one layer of PTCDA, in contrast to our recent study of PTCDA on a PbAg$_2$ surface alloy [Phys. Rev. Lett. 117, 096805 (2016)] . In addition, the vertical adsorption geometry of PTCDA and the interfacial energy level alignment indicate the absence of any chemical interaction between the molecule and the surface alloy. We attribute the different interactions at these PTCDA/surface alloy interfaces to the presence or absence of local $σ$-bonds between the PTCDA oxygen atoms and the surface atoms. Combining our findings with results from literature, we are able to propose an empiric rule for engineering the surface band structure of alloys by adsorption of organic molecules.

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