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Coadsorption of CN and O on Cu (100) surface: A density functional study

机译:CN和O在Cu(100)表面上的共吸附:密度泛函研究

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The adsorption of cyanide (CN) or oxygen atom, as well as the coadsorption of CN + O on Cu (100) surface is studied by using density functional theory (DFT) and the cluster model method. Cu-14 cluster is used to simulate the surface. Perpendicular and parallel bonding geometries of CN adsorbed on Cu (10 0) surface are considered, respectively. The present calculations show that the CN may be absorbed on top and bridge sites by carbon atom of cyanide (C-down), and C-down on top site is the most favorable. The adsorbed C-N stretch frequencies compared with that of the gaseous CN species are all red-shifted, except the C-down on top site. The charge transfer from the surface to the CN species leads to an increase in work function for the Cu surface. The oxygen atom adsorbed on the four-fold hollow site of Cu (100) is the most favorable, and is consistent with the experimental study. The coadsorption of O at a four-fold hollow site tends to block adsorption of CN at the nearby sites. If O coverage increases, the CN may be adsorbed on the top and bridges sites with the C-down model. The reaction CN + O -> OCN on the Cu (100) is predicted to be exothermic, and formed OCN species may be stably absorbed on the Cu (100). (c) 2005 Elsevier B.V. All rights reserved.
机译:利用密度泛函理论(DFT)和聚类模型方法研究了氰化物(CN)或氧原子的吸附以及CN + O在Cu(100)表面的共吸附。 Cu-14团簇用于模拟表面。分别考虑了吸附在Cu(10 0)表面上的CN的垂直和平行键几何。目前的计算表明,CN可能被氰化物的碳原子吸附在顶部和桥位(C-down),最有利的是顶部C-down。相比于气态CN物种,吸附的C-N拉伸频率都发生了红移,除了顶部位置的C-下降。从表面到CN物种的电荷转移导致Cu表面的功函数增加。吸附在Cu(100)的四个空心位置上的氧原子是最有利的,并且与实验研究一致。 O在四倍的空心位点上的共吸附趋于阻止CN在附近位点上的吸附。如果O覆盖率增加,则CN可能会被C-down模型吸附在顶部和桥梁位置。预计在铜(100)上发生CN + O→OCN反应放热,并且形成的OCN种类可能稳定地吸附在铜(100)上。 (c)2005 Elsevier B.V.保留所有权利。

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