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Adsorption and diffusion of Ru adatoms on Ru(0001)-supported graphene: Large-scale first-principles calculations

机译:Ru(0001)负载的石墨烯上Ru原子的吸附和扩散:大规模第一性原理计算

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摘要

Large-scale first-principles density functional theory calculations are performed to investigate the adsorption and diffusion of Ru adatoms on monolayer graphene (G) supported on Ru(0001). The G sheet exhibits a periodic moiré-cell superstructure due to lattice mismatch. Within a moirécell, there are three distinct regions: fcc, hcp, and mound, in which the C6-ring center is above a fcc site, a hcp site, and a surface Ru atom of Ru(0001), respectively. The adsorption energy of a Ru adatom is evaluated at specific sites in these distinct regions. We find the strongest binding at an adsorption site above a C atom in the fcc region, next strongest in the hcp region, then the fcc-hcp boundary (ridge) between these regions, and the weakest binding in the mound region. Behavior is similar to that observed from small-unit-cell calculations of Habenicht et al. [Top. Catal. 57, 69 (2014)], which differ from previous large-scale calculations. We determine the minimum-energy path for local diffusion near the center of the fcc region and obtain a localdiffusion barrier of ∼0.48 eV. We also estimate a significantly lower local diffusion barrier in the ridge region. These barriers and information on the adsorption energy variation facilitate development of a realistic model for the global potential energy surface for Ru adatoms. This in turn enables simulation studies elucidating diffusion-mediated directed-assembly of Ru nanoclusters during deposition of Ru on G/Ru(0001).
机译:进行了大规模的第一性原理密度泛函理论计算,以研究Ru(0001)负载的单层石墨烯(G)上Ru原子的吸附和扩散。由于晶格失配,G片表现出周期性的莫尔单元上层结构。在莫尔网格中,存在三个不同的区域:fcc,hcp和土墩,其中C6环中心分别位于Ru(0001)的fcc部位,hcp部位和表面Ru原子上方。在这些不同区域的特定位置评估了Ru吸附原子的吸附能。我们在fcc区域中C原子上方的吸附位点发现最强的结合力,其次是在hcp区域中最强的结合力,然后是这些区域之间的fcc-hcp边界(脊),而在土丘区域的结合力最弱。行为类似于从Habenicht等人的小单元细胞计算中观察到的行为。 [最佳。卡塔尔。 57,69(2014)],与以前的大规模计算不同。我们确定了fcc区域中心附近局部扩散的最小能量路径,并获得了〜0.48 eV的局部扩散势垒。我们还估计了脊区域的局部扩散势垒明显降低。这些障碍和有关吸附能变化的信息促进了Ru原子的整体势能面的现实模型的开发。反过来,这使得能够进行仿真研究,阐明在Ru沉积在G / Ru(0001)上的过程中,Ru纳米簇的扩散介导的定向组装。

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    Han, Yong; Evans, James W.;

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  • 年度 2015
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  • 正文语种 en
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