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O、OH 和 OOH 辅助甲醇在 Au-Ag(111) 上的选择性偶联。

The O, OH and OOH-assisted selective coupling of methanol on Au-Ag(111).

作者信息

Zhong Wenhui, Liang Jinxia, Hu Wei, Cao Xinrui, Jia Chuanyi, Jiang Jun

机构信息

Guizhou Provincial Key Laboratory of Computational Nano-Material Science, Institute of Applied Physics, Guizhou Synergetic Innovation Center of Scientific Big Data for Advanced Manufacturing Technology, Guizhou Normal College, Gaoxin Road 115, Guiyang, Guizhou 550018, P. R. China.

出版信息

Phys Chem Chem Phys. 2016 Apr 21;18(15):9969-78. doi: 10.1039/c6cp00336b. Epub 2016 Mar 7.

Abstract

Using density functional theory (DFT) calculations, we performed a thorough theoretical investigation on the catalytic mechanism of oxidative self-coupling of methanol with molecular oxygen on Au-Ag catalysts. It is found that molecular oxygen can be activated via a hydroperoxyl (OOH) intermediate by taking a hydrogen atom from co-adsorbed methanol with an energy barrier of 0.51 eV, which is actually the rate determining step for the overall reaction. The O, OH and OOH oxidant formation proceeds via two channels of I and II with low barriers. We demonstrated that the oxidative coupling of methanol by OOH, atomic oxygen, and hydroxyl is much more favorable than the total oxidation of methanol, and is responsible for the high selectivity of Au-Ag catalysts in methanol oxidation. The revealed activation mechanism provides an efficient pathway for optimizing the selective coupling of methanol with dioxygen.

摘要

通过密度泛函理论(DFT)计算,我们对甲醇与分子氧在Au-Ag催化剂上的氧化自偶联催化机理进行了全面的理论研究。结果发现,分子氧可以通过氢过氧根(OOH)中间体被活化,从共吸附的甲醇中夺取一个氢原子,能垒为0.51 eV,这实际上是整个反应的速率决定步骤。O、OH和OOH氧化剂的形成通过低能垒的I和II两个通道进行。我们证明了OOH、原子氧和羟基对甲醇的氧化偶联比甲醇的完全氧化更有利,这是Au-Ag催化剂在甲醇氧化中具有高选择性的原因。所揭示的活化机理为优化甲醇与双氧的选择性偶联提供了一条有效途径。

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