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Theoretical study of acetate decomposition on Au(111) surface: Oxygen-assisted γ-CH activation mechanism

机译:乙酸在Au(111)表面分解的理论研究:氧辅助γ-CH活化机理

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Inspired by the recent experimental results that the oxygen atoms adsorbed on Au(111) surface have a great influence on the mechanism and path of the decomposition of acetate(ACS Catal, 2014, 4(9): 3281-3288), the density functional theory was performed to simulate the decomposition of acetate on Au(111) surface with and without oxygen atom. The present calculation resents show that the pre-adsorbed oxygen atoms on Au(111) surface can activate the gamma-CH bond of acetate and reduce the activation energy of the reaction, then finally get the product of carbon dioxide and formaldehyde. While without adsorbed oxygen atoms, acetate on Au(111) surface breaks down into carbon dioxide and methyl through C-C bond cleavage. In addition, the decomposition of acetate on Ag(111) surface with pre-adsorbed oxygen atoms has also been simulated and that of Au(111), and it was found that the oxygen atoms on Ag(111) assist gamma-CH bond activation more efficiently due to its more negatively charged. The present study highlights the importance of oxygen assisted gamma-CH bond activation for oxygen-containing molecular on Au(111) and provide a new route for the synthesis of ester. (C) 2018 Published by Elsevier Ltd on behalf of Hydrogen Energy Publications LLC.
机译:受近期实验结果的启发,吸附在Au(111)表面的氧原子对乙酸​​盐分解的机理和路径有很大影响(ACS Catal,2014,4(9):3281-3288),密度函数进行了理论分析,模拟了有氧原子和无氧原子时乙酸盐在Au(111)表面的分解。目前的计算结果表明,Au(111)表面上预先吸附的氧原子可以激活乙酸的γ-CH键并降低反应的活化能,最终得到二氧化碳和甲醛的产物。尽管没有吸附的氧原子,Au(111)表面的乙酸盐会通过C-C键断裂分解为二氧化碳和甲基。此外,还模拟了乙酸盐在Ag(111)表面上预先吸附的氧原子的分解以及Au(111)的分解,结果发现Ag(111)上的氧原子有助于γ-CH键的活化由于其带更多负电荷,因此效率更高。本研究强调了氧辅助的γ-CH键活化对于Au(111)上含氧分子的重要性,并提供了合成酯的新途径。 (C)2018年由Elsevier Ltd代表Hydrogen Energy Publications LLC发布。

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