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首页> 外文期刊>The journal of physical chemistry, B. Condensed matter, materials, surfaces, interfaces & biophysical >Role of Surface Defects in the Activation of Supported Metals: A Quantum-Chemical Study of Acetylene Cyclotrimerization on Pd_1/MgO
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Role of Surface Defects in the Activation of Supported Metals: A Quantum-Chemical Study of Acetylene Cyclotrimerization on Pd_1/MgO

机译:表面缺陷在负载金属活化中的作用:乙炔环三聚体在Pd_1 / MgO上的量子化学研究

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We report results of first principle density functional calculations on the catalytic activity of isolated Pd atoms deposited on different MgO surface sites. The reaction of interest is the cyclization of acetylene to benzene, 3C_2H_2 → C_6H_6. Experimentally, it has been observed that the reaction is catalyzed by size-selected Pd clusters and that even a single Pd atom deposited on MgO is enough for the reaction to occur. In this theoretical study we have analyzed in detail the role of the support. It is found that a gas-phase Pd atom is not active in promoting the reaction as it has not enough electron density to bind and activate three acetylene molecules. The reaction, however, occurs when Pd is bonded to low-coordinated oxygen anions of the surface, located at sites such as steps and corners. Oxygen anions on (001) terraces, in fact, are not a sufficiently good electron donor to increase the electron density on the metal. Another group of surface defects which play a role in the activation of the Pd atom are F centers, oxygen vacancies with two trapped electrons. These defect centers, independently of their location, terrace, edge, or corner, are very strong "basic" sites: they efficiently transfer electronic charge to the adsorbed metal atom and thus improve its catalytic properties. This study demonstrates the importance of morphological defects and anion vacancies at the metal-oxide interface and the noninnocent role of the substrate in catalysis by supported metal particles.
机译:我们报告沉积在不同的MgO表面位点的孤立Pd原子的催化活性的第一原理密度泛函计算结果。感兴趣的反应是乙炔环化成苯3C_2H_2→C_6H_6。在实验上,已经观察到该反应由尺寸选择的Pd簇催化,并且即使沉积在MgO上的单个Pd原子也足以进行反应。在这项理论研究中,我们详细分析了支持的作用。已经发现,气相Pd原子没有足够的电子密度来结合和活化三个乙炔分子,因此没有促进反应的活性。但是,当Pd与表面的低配位氧阴离子键合时,会发生反应,氧阴离子位于台阶和拐角等位置。实际上,(001)台阶上的氧阴离子不是足够好的电子供体,无法增加金属上的电子密度。在Pd原子活化中起作用的另一组表面缺陷是F中心,即带有两个被俘获电子的氧空位。这些缺陷中心,无论其位置,平台,边缘或拐角如何,都是非常坚固的“基本”位置:它们有效地将电荷转移到吸附的金属原子上,从而提高了其催化性能。这项研究证明了金属氧化物界面上的形态缺陷和阴离子空位的重要性,以及底物在负载型金属颗粒催化中的非无害作用。

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