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Stability and reactivity of copper oxo-clusters in ZSM-5 zeolite for selective methane oxidation to methanol

机译:ZSM-5沸石中铜氧簇的选择性甲烷氧化制甲醇的稳定性和反应性

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A periodic density functional theory study complemented by ab initio thermodynamic analysis was carried out to identify the active sites and mechanism of selective oxidation of methane to methanol in Cu/ZSM-5 catalysts. We systematically analyzed structure and stability of a wide range of potential extra-framework Cu complexes in ZSM-5 to address Cu speciation in realistic zeolite materials. We demonstrate that depending on the conditions of catalyst activation, binuclear [Cu(mu-O)Cu](2+) species and trinuclear oxygenated [Cu3(mu-O)(3)](2+) clusters can preferentially be stabilized in ZSM-5. The trinuclear Cu sites are the most stable extra -framework Cu species in Cu/ZSM-5 activated by calcination, whereas the formation of the binuclear complexes is favored under O-2-poor atmosphere. Although both types of Cu complexes contain extra -framework O-. radical species necessary for the homolytic C-H bond cleavage, the reaction paths for methane conversion that they provide are drastically different. Binuclear Cu sites react with CH4 stoichiometrically to yield methoxy groups strongly bound in the zeolite micropores. In contrast, the trinuclear [Cu-3(mu-O)(3)](2+) cluster favors the direct conversion of CH4 to CH3OH coordinated with the partially reduced Cu complex. These computational findings point to the trinuclear Cu-oxo clusters in ZSM-5 as the potential candidates for promotion of the low temperature direct conversion of CH4 to CH3OH. (C) 2016 Elsevier Inc. All rights reserved.
机译:进行了周期性密度泛函理论研究,并从头进行了热力学分析,以确定了Cu / ZSM-5催化剂中甲烷选择性氧化为甲醇的活性部位和机理。我们系统地分析了ZSM-5中各种潜在的骨架外铜配合物的结构和稳定性,以解决现实沸石材料中的铜形态。我们证明,根据催化剂活化的条件,双核[Cu(mu-O)Cu](2+)物种和三核氧化[Cu3(mu-O)(3)](2+)簇可以优先稳定在ZSM-5。三核铜位点是煅烧活化的Cu / ZSM-5中最稳定的骨架外铜物种,而在O-2贫乏的气氛下,双核络合物的形成更为有利。尽管两种类型的Cu络合物均包含额外的骨架O-。均相C-H键断裂所必需的自由基种类,它们提供的甲烷转化反应路径完全不同。双核Cu位在化学计量上与CH4反应生成牢固结合在沸石微孔中的甲氧基。相比之下,三核[Cu-3(mu-O)(3)](2+)团簇有利于CH4直接转化为CH3OH,并与部分还原的Cu配合物配合。这些计算结果表明ZSM-5中的三核Cu-oxo团簇可能是促进CH4低温直接转化为CH3OH的潜在候选物。 (C)2016 Elsevier Inc.保留所有权利。

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