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Insights into the Kinetics of Cracking and Dehydrogenation Reactions of Light Alkanes in H-MFI

机译:对轻链烷烃在H-MFI中裂解和脱氢反应动力学的认识

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Monomolecular reactions of alkanes in H-MFI were investigated by means of a dispersion-corrected density functional, WB97X-D, combined with a hybrid quantum mechanics/molecular mechanics (QM/MM) method applied to a cluster model of the zeolite. The cluster contains 437 tetrahedral (T) atoms, within which a T5 region containing the acid site along with the representative alkane is treated quantum mechanically. The influence of active site location on reaction energetics was examined by studying cracking and dehydrogenation reactions of n-butane at two regions in H-MFI— T12, where the proton is at the intersection of straight and sinusoidal channels, and T10, where the proton is within the sinusoidal channel. Two transition states were observed for cracking: one where the proton attacks the C~C bond and another where it attacks a C atom. Dehydrogenation proceeds via a concerted mechanism, where the transition state indicates simultaneous H2 formation and proton migration to the framework. Intrinsic activation energies can be determined accurately with this method, although heats of adsorption were found to be higher in magnitude relative to experiments, which is most likely mainly caused by the MM dispersion parameters for the zeolite framework atoms. Intrinsic activation energies calculated for reactions at the T10 site are higher than those at T12 owing to differences in interaction of the substrate with the acid site as well as with the zeolite framework, demonstrating that Bronsted acid sites in H-MFI are not equivalent for these reactions. Apparent activation energies, determined from calculated intrinsic activation energies and experimentally measured heats of adsorption taken from the literature, are in excellent agreement with experimental results.
机译:通过分散校正的密度泛函WB97X-D,结合应用于分子簇模型的混合量子力学/分子力学(QM / MM)方法,研究了H-MFI中烷烃的单分子反应。该簇包含437个四面体(T)原子,在其中对包含酸位点和代表性烷烃的T5区域进行了量子力学处理。通过研究正丁烷在H-MFI-T12中两个区域(质子位于直线和正弦通道的交叉点)和T10(质子在此位置)的两个区域上的正丁烷的裂解和脱氢反应,研究了活性位点位置对反应能的影响。在正弦通道内。观察到有两个过渡态发生开裂:一个质子攻击C〜C键,另一个质子攻击C原子。脱氢通过协同机制进行,其中过渡态表明同时形成H2和质子迁移至骨架。尽管发现吸附热的量级相对于实验要高,但是通过这种方法可以准确地确定本征活化能,这很可能主要是由沸石骨架原子的MM分散参数引起的。由于底物与酸位点以及与沸石骨架之间相互作用的差异,在T10位点的反应计算的本征活化能高于T12位点,表明H-MFI中的布朗斯台德酸位点与这些位点不相等反应。表观活化能由计算得出的固有活化能和从文献中获得的实验测量的吸附热确定,与实验结果非常吻合。

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