H-SSZ-13催化正丁烷异构化的理论研究

Lucas Spiske, P. Plessow, K. Kazmierczak, Bart D. Vandegehuchte, F. Studt
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引用次数: 0

摘要

利用混合密度泛函理论计算,研究了正丁烷通过中间体生成烯烃异构化为异丁烷的不同机理。丁烯和异丁烯异构化的单分子学机制普遍存在,与双分子机制(190kJ/mol)相比,在400°C时吉布斯自由能垒为155kJ/mol,因为后者的熵不太有利。将烯烃转化为烷烃(反之亦然)的氢转移反应也包括在研究中,并且显示异丁烯转化为异丁烷的自由能垒为203kJ/mol。此外,与双分子机制相比,甲基转移机制被讨论为形成C3和C5副产物的可能途径;计算出初始甲基转移的最高势垒为227kJ/mol。我们讨论了熵和非调和性对所有机制的影响,指出在计算这些系统时,由于计算方法的不确定性,计算的反应势垒可能会被高估。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Theoretical investigation of catalytic n-butane isomerization over H-SSZ-13
Hybrid density functional theory calculations are used to investigate different mechanisms of the isomerization of n-butane to isobutane via intermediate formation of olefins. The monomolecular mechanism for isomerization of butene and isobutene is found to be prevalent, with a Gibbs free energy barrier of 155 kJ/mol at 400°C, compared to the bimolecular mechanism (190 kJ/mol) due to less favorable entropy for the latter. Hydrogen transfer reactions that convert olefins into alkanes (and vice versa) are also included in the investigations, and show a free energy barrier of 203 kJ/mol for conversion of isobutene to isobutane. Additionally, a methyl transfer mechanism is discussed as a possible pathway for formation of C3 and C5 side products, in comparison to the bimolecular mechanism; the highest barrier of the initial methyl transfer is calculated to be 227 kJ/mol. We discuss the influence of entropy and anharmonicity on all mechanisms, stating that through the uncertainties in computational methods when calculating these systems, the calculated reaction barriers are likely to be overestimated here.
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