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催化重要的 Pd/Au 合金的原子级几何形状和电子结构。

Atomic-scale geometry and electronic structure of catalytically important pd/au alloys.

机构信息

Department of Chemistry, Tufts University, Medford, Massachusetts 02155-5813.

出版信息

ACS Nano. 2010 Mar 23;4(3):1637-45. doi: 10.1021/nn901390y.

Abstract

Pd/Au bimetallic alloys catalyze many important reactions ranging from the synthesis of vinyl acetate and hydrogen peroxide to the oxidation of carbon monoxide and trimerization of acetylene. It is known that the atomic-scale geometry of these alloys can dramatically affect both their reactivity and selectivity. However, there is a distinct lack of experimental characterization and quantification of ligand and ensemble effects in this system. Low-temperature, ultrahigh vacuum scanning tunneling microscopy is used to investigate the atomic-scale geometry of Pd/Au111 near-surface alloys and to spectroscopically probe their local electronic structure. The results reveal that the herringbone reconstruction of Au111 provides entry sites for the incorporation of Pd atoms in the Au surface and that the degree of mixing is dictated by the surface temperature. At catalytically relevant temperatures the distribution of low coverages of Pd in the alloy is random, except for a lack of nearest neighbor pairs in both the surface and subsurface sites. Scanning tunneling spectroscopy is used to examine the electronic structure of the individual Pd atoms in surface and subsurface sites. This work reveals that in both surface and subsurface locations, Pd atoms display a very similar electronic structure to the surrounding Au atoms. However, individual surface and subsurface Pd atoms are depleted of charge in a very narrow region at the band edge of the Au surface state. dI/dV images of the phenomena demonstrate the spatial extent of this electronic perturbation.

摘要

钯/金双金属合金催化了许多重要的反应,从醋酸乙烯酯和过氧化氢的合成到一氧化碳的氧化和乙炔的三聚。已知这些合金的原子尺度几何形状可以显著影响它们的反应性和选择性。然而,在这个体系中,配体和整体效应的实验表征和量化明显缺乏。低温、超高真空扫描隧道显微镜用于研究 Pd/Au111 近表面合金的原子尺度几何形状,并对其局部电子结构进行光谱探测。结果表明,Au111 的鱼骨状重构为 Au 表面掺入 Pd 原子提供了入口,并且混合程度由表面温度决定。在催化相关的温度下,合金中 Pd 的低覆盖率分布是随机的,除了表面和次表面位置都缺乏最近邻对。扫描隧道光谱用于研究表面和次表面位置中单个 Pd 原子的电子结构。这项工作表明,在表面和次表面位置,Pd 原子的电子结构与周围的 Au 原子非常相似。然而,在 Au 表面态能带边缘的一个非常窄的区域,单个表面和次表面 Pd 原子的电荷耗尽。现象的 dI/dV 图像证明了这种电子微扰的空间范围。

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