Department of Inorganic and Analytical Chemistry, Budapest University of Technology and Economics, Szent Gellért tér 4, Budapest, 1111, Hungary.
Quantum Solid State Physics, KU Leuven, Celestijnenlaan 200d, 3001, Leuven, Belgium.
Chemistry. 2019 Dec 10;25(69):15795-15804. doi: 10.1002/chem.201902794. Epub 2019 Nov 7.
The dopant and size-dependent propene adsorption on neutral gold (Au ) and yttrium-doped gold (Au Y) clusters in the n=5-15 size range are investigated, combining mass spectrometry and gas phase reactions in a low-pressure collision cell and density functional theory calculations. The adsorption energies, extracted from the experimental data using an RRKM analysis, show a similar size dependence as the quantum chemical results and are in the range of ≈0.6-1.2 eV. Yttrium doping significantly alters the propene adsorption energies for n=5, 12 and 13. Chemical bonding and energy decomposition analysis showed that there is no covalent bond between the cluster and propene, and that charge transfer and other non-covalent interactions are dominant. The natural charges, Wiberg bond indices, and the importance of charge transfer all support an electron donation/back-donation mechanism for the adsorption. Yttrium plays a significant role not only in the propene binding energy, but also in the chemical bonding in the cluster-propene adduct. Propene preferentially binds to yttrium in small clusters (n<10), and to a gold atom at larger sizes. Besides charge transfer, relaxation also plays an important role, illustrating the non-local effect of the yttrium dopant. It is shown that the frontier molecular orbitals of the clusters determine the chemical bonding, in line with the molecular-like electronic structure of metal clusters.
采用低气压碰撞池中的质谱和气相反应以及密度泛函理论计算,研究了中性金(Au)和掺钇金(Au Y)团簇在 n=5-15 尺寸范围内对丙烯的掺杂和尺寸依赖性吸附。使用 RRKM 分析从实验数据中提取的吸附能显示出与量子化学结果相似的尺寸依赖性,并且在 ≈0.6-1.2 eV 的范围内。钇掺杂显著改变了 n=5、12 和 13 的丙烯吸附能。化学成键和能量分解分析表明,团簇与丙烯之间没有共价键,并且电荷转移和其他非共价相互作用占主导地位。自然电荷、Wiberg 键指数和电荷转移的重要性都支持吸附的电子供体/回供体机制。钇不仅在丙烯结合能中起着重要作用,而且在团簇-丙烯加合物中的化学成键中也起着重要作用。丙烯在较小的团簇(n<10)中优先与钇结合,而在较大的尺寸中与金原子结合。除了电荷转移,弛豫也起着重要作用,说明了钇掺杂剂的非局域效应。结果表明,团簇的前沿分子轨道决定了化学成键,这与金属团簇的分子样电子结构一致。