首页> 外文期刊>The Journal of Chemical Physics >Excited-state potential-energy surfaces of metal-adsorbed organic molecules from linear expansion ?-self-consistent field density-functional theory (?SCF-DFT)
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Excited-state potential-energy surfaces of metal-adsorbed organic molecules from linear expansion ?-self-consistent field density-functional theory (?SCF-DFT)

机译:金属吸附的有机分子的线性膨胀激发态势能表面-自洽场密度泛函理论(?SCF-DFT)

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Accurate and efficient simulation of excited state properties is an important and much aspired cornerstone in the study of adsorbate dynamics on metal surfaces. To this end, the recently proposed linear expansion ?-self-consistent field method by Gavnholt et al. [Phys. Rev. B 78, 075441 (2008)] presents an efficient alternative to time consuming quasi-particle calculations. In this method, the standard Kohn-Sham equations of density-functional theory are solved with the constraint of a nonequilibrium occupation in a region of Hilbert-space resembling gas-phase orbitals of the adsorbate. In this work, we discuss the applicability of this method for the excited-state dynamics of metalsurface mounted organic adsorbates, specifically in the context of molecular switching. We present necessary advancements to allow for a consistent quality description of excited-state potential-energy surfaces (PESs), and illustrate the concept with the application to Azobenzene adsorbed on Ag(111) and Au(111) surfaces. We find that the explicit inclusion of substrate electronic states modifies the topologies of intra-molecular excited-state PESs of the molecule due to image charge and hybridization effects. While the molecule in gas phase shows a clear energetic separation of resonances that induce isomerization and backreaction, the surface-adsorbed molecule does not. The concomitant possibly simultaneous induction of both processes would lead to a significantly reduced switching efficiency of such a mechanism.
机译:准确有效地模拟激发态特性是研究金属表面吸附物动力学的重要基础,也是人们渴望的基础。为此,Gavnholt等人最近提出了线性膨胀γ-自洽场方法。 [物理B 78,075441(2008)Rev.提出了一种耗时的准粒子计算的有效替代方法。在这种方法中,以希尔伯特空间类似被吸附物气相轨道的区域内的非平衡占据为约束,求解了密度泛函理论的标准Kohn-Sham方程。在这项工作中,我们讨论该方法对金属表面安装的有机吸附物的激发态动力学的适用性,特别是在分子转换的背景下。我们提出必要的进展,以便对激发态势能表面(PESs)进行一致的质量描述,并举例说明将其应用于吸附在Ag(111)和Au(111)表面的偶氮苯的概念。我们发现,由于图像电荷和杂交效应,基板电子态的明确包含改变了分子的分子内激发态PES的拓扑。虽然气相中的分子显示出清晰的高能分离,从而引起了异构化和逆反应,但表面吸附的分子却没有。两个过程的同时可能的同时感应将导致这种机构的开关效率大大降低。

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