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Quantum size effects of CO reactivity on metallic quantum dots

机译:CO反应性对金属量子点的量子尺寸效应

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We study the reactivity of a metallic quantum dot when exposed to a gas phase CO molecule. First, we perform a Newns-Anderson model calculation in which the valence electrons of the quantum dot are confined by a finite potential well and the molecule is characterized by its lowest unoccupied molecular orbital in the gas phase. A pronounced quantum size effect regarding the charge transfer between the quantum dot and molecule is observed. We then perform a first-principles calculation for a selected size interval. The quantum dot is described within the jellium model and the molecule by pseudopotentials. Our results show that the charge transfer between the quantum dot and the molecule depends critically on the size of the quantum dot, and that this dependence is intimately connected with the electronic structure. The key factor for charge transfer is the presence of states with the symmetry of the chemically active molecular orbital at the Fermi level.
机译:我们研究了暴露于气相CO分子时金属量子点的反应性。首先,我们进行Newns-Anderson模型计算,其中量子点的价电子被有限势阱限制,并且该分子的特征在于其在气相中的最低未占据分子轨道。观察到与量子点和分子之间的电荷转移有关的明显的量子尺寸效应。然后,我们针对选定的大小间隔执行第一性原理计算。量子点在pseudo模型和分子中用伪势来描述。我们的结果表明,量子点与分子之间的电荷转移关键取决于量子点的大小,并且这种依赖性与电子结构密切相关。电荷转移的关键因素是在费米能级上具有化学活性分子轨道对称性的状态的存在。

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