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关于在 Fe-ZSM-5 沸石上将乙醇转化为乙烯的机理研究。

Mechanistic studies on the transformation of ethanol into ethene over Fe-ZSM-5 zeolite.

机构信息

Laboratory for Computational and Applied Chemistry, Department of Chemistry, Faculty of Science and Center of Nanotechnology, Kasetsart University Research and Development Institute, Kasetsart University, Bangkok 10900, Thailand.

出版信息

Chemphyschem. 2013 Jan 14;14(1):101-7. doi: 10.1002/cphc.201200786. Epub 2012 Nov 19.

Abstract

Ethanol, through the utilization of bioethanol as a chemical resource, has received considerable industrial attention as it provides an alternative route to produce more valuable hydrocarbons. Using a density functional theory approach incorporating the M06-L functional, which includes dispersion interactions, a large 34T nanocluster model of Fe-ZSM-5 zeolite in which T is a Si or Al atom is employed to examine both the stepwise and concerted mechanisms of the transformation of ethanol into ethene. For the stepwise mechanism, ethanol dehydration commences from the first hydrogen abstraction of the ethanol OH group to form the ethoxide-hydroxide intermediate with a low activation energy of 17.7 kcal mol(-1). Consequently, the ethoxide-hydroxide intermediate is decomposed into ethene through hydrogen abstraction from the ethoxide methyl carbon to either the OH group of hydroxide or the oxygen of the ethoxide group with high activation energies of 64.8 and 63.5 kcal mol(-1), respectively. For the concerted mechanism, ethanol transformation into the ethene product occurs in a single step without intermediate formation, with an activation energy of 32.9 kcal mol(-1).

摘要

乙醇作为一种化学资源,通过利用生物乙醇,作为替代途径来生产更有价值的碳氢化合物,引起了相当多的工业关注。采用包含色散相互作用的 M06-L 函数的密度泛函理论方法,使用一个包含 34T 的大型 Fe-ZSM-5 沸石纳米团簇模型(其中 T 是 Si 或 Al 原子),研究了乙醇到乙烯的转化的逐步和协同机制。对于逐步机制,乙醇脱水从乙醇 OH 基团的第一次氢提取开始,形成具有低活化能 17.7 kcal mol(-1)的乙氧基-氢氧化物中间体。因此,乙氧基-氢氧化物中间体通过从乙氧基甲基碳到氢氧化物的 OH 基团或乙氧基的氧的氢提取而分解为乙烯,具有 64.8 和 63.5 kcal mol(-1)的高活化能。对于协同机制,乙醇在没有中间体形成的情况下,在单一步骤中转化为乙烯产物,其活化能为 32.9 kcal mol(-1)。

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