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首页> 外文期刊>The journal of physical chemistry, B. Condensed matter, materials, surfaces, interfaces & biophysical >Direct Methane-Methanol and Benzene-Phenol Conversions on Fe-ZSM-5 Zeolite: Theoretical Predictions on the Reaction Pathways and Energetics
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Direct Methane-Methanol and Benzene-Phenol Conversions on Fe-ZSM-5 Zeolite: Theoretical Predictions on the Reaction Pathways and Energetics

机译:Fe-ZSM-5沸石上的直接甲烷-甲醇和苯-酚转化:反应途径和能量的理论预测

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The reaction pathways and the energetics for the direct methane-methanol and benzene-phenol conversions that occur on the surface of Fe-ZSM-5 zeolite are analyzed from B3LYP DFT computations. We propose a reasonable model for "α-oxygen", a surface oxygen species responsible for the catalytic reactivities of Fe-ZSM-5 zeolite. Our model involves an iron-oxo species on the AlO_4 surface site of the zeolite as a catalytic active center and as a source of oxygen. The essential features of the reaction pathways for the methane-methanol and benzene-phenol conversions are identical, especially in bonding characters. In the initial stages of each reaction, methane or benzene comes into contact with the active iron site of the "α-oxygen" model, leading to the reactant (methane or benzene) complex. After the initial complex is formed, each reaction takes place in a two-step concerted manner, via neither radical species nor ionic intermediates. The concerted reaction pathway for the methane (benzene) hydroxylation involves an H atom abstraction and a methyl (phenyl) migration at the iron active center. From computed energetics for the reaction pathways, we predict that the benzene hydroxylation should be energetically more favorable than the methane hydroxylation.
机译:通过B3LYP DFT计算分析了Fe-ZSM-5沸石表面发生的直接甲烷-甲醇和苯-酚转化的反应途径和能级。我们为“α-氧”提出了一个合理的模型,“α-氧”是一种表面氧,负责Fe-ZSM-5沸石的催化反应。我们的模型涉及沸石AlO_4表面位点上的铁-氧代物种,作为催化活性中心和氧源。甲烷,甲醇和苯酚转化的反应途径的基本特征是相同的,尤其是在键合特性方面。在每个反应的初始阶段,甲烷或苯与“α-氧”模型的活性铁位点接触,形成反应物(甲烷或苯)络合物。形成初始络合物后,每个反应均通过自由基和离子中间体两步协同进行。甲烷(苯)羟基化的协调反应途径包括一个H原子的提取和一个甲基(苯基)在铁活性中心的迁移。通过计算反应路径的能量,我们预测苯的羟基化应比甲烷的羟基化在能量上更有利。

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