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Altering CO binding on gold cluster cations by Pd-doping

机译:改变公司绑定在黄金集群阳离子Pd-doping

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摘要

The introduction of dopant atoms into metal nanoparticles is an effective way to control the interaction with adsorbate molecules and is important in many catalytic processes. In this work, experimental and theoretical evidence of the influence of Pd doping on the bonding between small cationic Au-N(+) clusters and CO is presented. The CO adsorption is studied by combining low-pressure collision cell reactivity and infrared multiple photon dissociation spectroscopy experiments with density functional theory calculations. Measured dissociation rates of cluster-CO complexes (N <= 21) allow the estimation of cluster-CO binding energies, showing that Pd doping increases the CO adsorption energy to an extent that is size-dependent. These trends are reproduced by theoretical calculations up to N = 13. In agreement with theory, measurements of the C-O vibrational frequency suggest that for the doped PdAuN-1+ (N = 3-5, 11) clusters, CO adsorbs on an Au atom, while for N = 6-10 and N = 12-14, CO interacts directly with the Pd dopant. A pronounced red-shifting of the C-O vibrational frequency is observed when CO interacts directly with the Pd dopant, indicating a significant back-donation of electron charge from Pd to CO. In contrast, the blue-shifted frequencies, observed when CO interacts with an Au atom, indicate that sigma-donation dominates the Au-CO interaction. Studying such systems at the sub-nanometre scale enables a fundamental comprehension of the interactions between adsorbates, dopants and the host (Au) species at the atomic level.
机译:掺杂剂的引入原子在金属纳米粒子是一种有效的控制方法与被吸附物分子在许多催化过程重要。工作,实验和理论的证据Pd掺杂的影响之间的关系小阳离子n(+)集群和股份有限公司提出了。结合低压碰撞细胞反应性和红外多光子离解用密度泛函光谱学实验理论计算。cluster-CO复合物(N < = 21)允许估计cluster-CO结合能,表明Pd掺杂增加了有限公司吸附能在某种程度上尺度依赖的。理论计算了N = 13。协议理论,测量切断振动频率表明掺杂PdAuN-1 + (N = 3 - 5、11)集群,吸附于一种非盟原子,而对于N = 6 - 10 N = 12 - 14,有限公司直接与Pd掺杂剂相互作用。明显的红移,切断振动频率是观察到当公司直接交互Pd掺杂剂,表明一个重要back-donation电子电荷从Pd有限公司相比之下,蓝移频率,观察到当公司与一个非盟原子,表明sigma-donation Au-CO占主导地位交互。使一个基本sub-nanometre规模之间的相互作用的理解被吸附物,掺杂物和主机(Au)物种原子水平。

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