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通过有机分子吸附调节阶梯状金属表面的功函数

Tuning the work function of stepped metal surfaces by adsorption of organic molecules.

作者信息

Jiang Yingda, Li Jingtai, Su Guirong, Ferri Nicola, Liu Wei, Tkatchenko Alexandre

机构信息

Nano Structural Materials Center, School of Materials Science and Engineering, Nanjing University of Science and Technology, Nanjing 210094, Jiangsu, People's Republic of China.

出版信息

J Phys Condens Matter. 2017 May 24;29(20):204001. doi: 10.1088/1361-648X/aa693e. Epub 2017 Mar 27.

Abstract

Understanding the binding mechanisms for aromatic molecules on transition-metal surfaces, especially with defects such as vacancies, steps and kinks, is a major challenge in designing functional interfaces for organic devices. One important parameter in the performance of organic/inorganic devices is the barrier of charge carrier injection. In the case of a metallic electrode, tuning the electronic interface potential or the work function for electronic level alignment is crucial. Here, we use density-functional theory (DFT) calculations with van der Waals (vdW) interactions treated with both screened pairwise (vdW) and many-body dispersion (MBD) methods, to systematically study the interactions of benzene with a variety of stepped surfaces. Our calculations confirm the physisorptive character of Ag(2 1 1), Ag(5 3 3), Ag(3 2 2), Ag(7 5 5) and Ag(5 4 4) surfaces upon the adsorption of benzene. The MBD effects reduce the adsorption energies by about 0.15 eV per molecule compared to the results from the DFT  +  vdW method. In addition, we find that the higher the step density, the larger the reduction of the work function upon the adsorption of benzene. We also study the effect of vdW interactions on the electronic structure using a fully self-consistent implementation of the vdW method in the Kohn-Sham DFT framework. We find that the self-consistent vdW effects increase the work function due to the lowered Fermi level and the increased vacuum level. As a result, the benzene/Ag(2 1 1) system has the lowest work function (3.67 eV) among the five adsorption systems, significantly smaller than the work function of the clean Ag(1 1 1) surface (4.74 eV). Our results provide important insights into the stability and electronic properties of molecules adsorbed on stepped metal surfaces, which could help in designing more appropriate interfaces with low work functions for electron transfer.

摘要

理解芳香族分子在过渡金属表面的结合机制,尤其是与空位、台阶和扭结等缺陷的结合机制,是设计有机器件功能界面的一项重大挑战。有机/无机器件性能的一个重要参数是电荷载流子注入势垒。对于金属电极而言,调节电子界面电势或功函数以实现电子能级对齐至关重要。在此,我们使用密度泛函理论(DFT)计算,并采用屏蔽成对(vdW)和多体色散(MBD)方法处理范德华(vdW)相互作用,以系统地研究苯与各种台阶表面的相互作用。我们的计算证实了苯吸附在Ag(2 1 1)、Ag(5 3 3)、Ag(3 2 2)、Ag(7 5 5)和Ag(5 4 4)表面时的物理吸附特性。与DFT + vdW方法的结果相比,MBD效应使每个分子的吸附能降低了约0.15 eV。此外,我们发现台阶密度越高,苯吸附后功函数的降低幅度越大。我们还在Kohn-Sham DFT框架中使用vdW方法的完全自洽实现来研究vdW相互作用对电子结构的影响。我们发现,由于费米能级降低和真空能级增加,自洽vdW效应会增加功函数。因此,在五个吸附体系中,苯/Ag(2 1 1)体系的功函数最低(3.67 eV),明显小于清洁Ag(1 1 1)表面的功函数(4.74 eV)。我们的结果为吸附在台阶金属表面的分子的稳定性和电子性质提供了重要见解,这有助于设计更合适的、具有低功函数的电子转移界面。

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