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Understanding the Dual Active Sites of the FeO/Pt(111) Interface and Reaction Kinetics: Density Functional Theory Study on Methanol Oxidation to Formaldehyde

机译:了解Feo / Pt(111)界面和反应动力学的双活性部位:密度函数理论研究甲醇氧化对甲醛

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摘要

Identifying the active sites and reaction kinetics for a catalytic reaction can provide significant insight into the catalytic systems. By use of DFT calculations, the catalytic activity of FeO/Pt(111) interfacial sites, which is an important class of catalyst with excellent activity, for methanol partial oxidation is carefully examined and compared. The O–H cleavage barrier of methanol is significantly diminished to below 0.1 eV with the aid of interfacial oxygen, which is much lower than that on the Pt(111) surface (0.8 eV). The CH3O* intermediate can further undergo a C–H bond breaking process to produce formaldehyde via a low barrier (∼0.2 eV) at the interfacial Pt sites. Assisted by an interfacial Pt–O ensemble, the O–H and C–H bond cleavages are greatly facilitated, suggesting that the FeO/Pt biphasic system could effectively combine the advantages of two individual phases. To investigate the rate-determining steps, a multisite microkinetic model is applied at the FeO/Pt interface. The results show that the overall rate can be significantly improved by lowering the activation energy of interfacial oxygen removal steps. Interestingly, the turnover frequency (TOF) can also be increased when the barriers of O2 dissociative adsorption on the Pt flat surface are increased, which is a special feature in multiphasic systems in comparison with the monophasic system. The active site and microkinetic studies in our work can provide insights into the development of metal/oxide catalysts for the partial oxidation of methanol or other primary alcohols.
机译:鉴定催化反应的活性位点和反应动力学可以为催化体系提供显着的见解。通过使用DFT计算,FeO / Pt(111)界面位点的催化活性是仔细检查并比较甲醇部分氧化的重要活性催化剂的重要催化剂。借助界面氧的甲醇的O-H裂解屏障明显降低至0.1eV,远低于Pt(111)表面(> 0.8eV)。 CH 3 O *中间体可以进一步经历C-H键破碎过程,通过在界面PT位点处通过低屏障(〜0.2V)产生甲醛。通过界面PT-O合奏辅助,大大促进了O-H和C-H键裂解,表明FEO / PT双相系统可以有效地结合两个单独阶段的优势。为了研究速率确定步骤,在FEO / PT接口上应用多态微芯室模型。结果表明,通过降低界面氧去除步骤的激活能量,可以显着提高整体速率。有趣的是,当PT平坦表面上的O2离菌吸附的屏障增加时,还可以增加周转频率(TOF),这是与单次系统相比的多相系统中的特征。我们工作中的活性位点和微动型研究可以为甲醇或其他伯醇部分氧化的金属/氧化物催化剂的开发提供洞察。

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