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Combined experimental and density functional theory (DFT) studies on the catalyst design for the oxidative coupling of methane

机译:甲烷氧化偶联催化剂设计的综合实验性和密度泛函理论(DFT)研究

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摘要

Catalytic descriptors were studied to design optimum catalysts for the oxidative coupling of methane (OCM) by combining density functional theory (DFT) calculations and actual reaction experiments. SrTiO3 perovskite catalysts, selected for OCM, were modified using metal dopants, and their electronic structures were calculated using the DFT method. The CH3 adsorption energy E-ads(CH3) and the oxygen vacancy formation energy E-f(vac) exhibited volcano-type correlations with the C-2(+) selectivity and O2- consumption for the formation of COx, respectively. The optimum catalytic activity, represented by the C-2(+) selectivity, was obtained for E-ads(CH3) = -2.0 to -1.5 eV, indicating that overly strong adsorption of methyl radicals (or easily dissociated C-H bonds of methane) and relatively insufficient oxygen supplementation to the catalyst surface improve deep oxidation to CO and CO2. Praseodymium (Pr)- and neodymium (Nd)-doped SrTiO3 catalysts confirm the DFT-predicted optimum electronic structure of the OCM catalysts. (C) 2019 Elsevier Inc. All rights reserved.
机译:研究了催化描述符以通过组合密度函数理论(DFT)计算和实际反应实验来设计用于甲烷(OCM)的氧化偶联的最佳催化剂。使用金属掺杂剂修饰用于OCM的SRTIO3钙钛矿催化剂,并使用DFT方法计算它们的电子结构。 CH3吸附能量E-ADS(CH3)和氧空位形成能量E-F(VAC)分别表现出与C-2(+)选择性和O 2消耗的火山型相关性以形成COX。由C-2(+)选择性表示的最佳催化活性用于E-Ads(CH3)= -2.0至-1.5eV,表明甲基自由基的过度吸附(或易于解离CH键)对催化剂表面的含氧相对不足,改善了CO和CO2的深氧化。镨(Pr) - 和钕(Nd) - 掺杂的Srtio3催化剂证实了OCM催化剂的DFT预测的最佳电子结构。 (c)2019 Elsevier Inc.保留所有权利。

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