Tantanak Duangkamol, Limtrakul Jumras, Gleeson Matthew Paul
Chemistry Department, Faculty of Science, King Mongkut's Institute of Technology Ladkrabang, Bangkok 10520, Thailand.
J Chem Inf Model. 2005 Sep-Oct;45(5):1303-12. doi: 10.1021/ci0500583.
Quantum mechanical (QM) cluster calculations have been performed on a model of ZSM-5 at DFT and MP2 levels. We investigated how the adsorption energies and the energetics of alkoxide intermediate formation of six different alkene substrates, ethene, propene, 1-butene, cis/trans butene, and isobutene, vary in this zeolite model. An analysis of the DFT geometric, electronic, and energetic parameters of the zeolite-substrate complexes, transition states, and alkoxide intermediates is performed using principal components analysis (PCA) and partial least squares (PLS). These deliver an insight into the correlated changes that occur between molecular structure and energy along the reaction coordinate between the physisorbed and chemisorbed species within the zeolite. To the best of our knowledge, this is the first occasion multivariate techniques such as PCA or PLS have been employed to profile the changes in electronics, distances, and angles in QM calculations of catalytic systems such as zeolites. We find the calculated adsorption and the alkoxide intermediate energies correlate strongly with the absolute charge on the substrate and the length of the substrate double bond. The transition states' energies are not affected by the zeolite framework as modeled, which explains why they correlate strongly with the gas-phase substrate protonation energy. Our cluster results show that for ethene, propene, 1-butene, and isobutene, the relative energetics associated with the formation of the alkoxide intermediate in ZSM-5 follow the same trends as calculations where the effects of the framework are included.
已在密度泛函理论(DFT)和二阶微扰理论(MP2)水平上对ZSM - 5模型进行了量子力学(QM)簇计算。我们研究了六种不同烯烃底物(乙烯、丙烯、1 - 丁烯、顺/反丁烯和异丁烯)在该沸石模型中的吸附能量以及醇盐中间体形成的能量学如何变化。使用主成分分析(PCA)和偏最小二乘法(PLS)对沸石 - 底物复合物、过渡态和醇盐中间体的DFT几何、电子和能量参数进行了分析。这些分析深入了解了在沸石内物理吸附和化学吸附物种之间沿着反应坐标分子结构和能量之间发生的相关变化。据我们所知,这是首次在诸如沸石等催化体系的QM计算中采用主成分分析(PCA)或偏最小二乘法(PLS)等多变量技术来描述电子、距离和角度的变化。我们发现计算得到的吸附能量和醇盐中间体能量与底物上的绝对电荷以及底物双键的长度密切相关。过渡态的能量不受所模拟的沸石骨架的影响,这解释了它们与气相底物质子化能量密切相关的原因。我们的簇计算结果表明,对于乙烯、丙烯、1 - 丁烯和异丁烯,在ZSM - 5中与醇盐中间体形成相关的相对能量学遵循与包含骨架效应的计算相同的趋势。