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首页> 外文期刊>The journal of physical chemistry, B. Condensed matter, materials, surfaces, interfaces & biophysical >Mechanistic Insight into Propylene Epoxidation with H2O2 over Titanium Silicalite-1: Effects of Zeolite Confinement and Solvent
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Mechanistic Insight into Propylene Epoxidation with H2O2 over Titanium Silicalite-1: Effects of Zeolite Confinement and Solvent

机译:用H 2 O 2对丙烯环氧化的机械洞察硅钛 - 1:沸石约束和溶剂的影响

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Density functional theory (DFT) calculations were performed to investigate the effects of zeolite confinement and solvent on propylene epoxidation with H2O2 over the titanium silicalite-1 (TS-1) catalyst. The 144T and 143T cluster models containing typical 10MR channels of TS-1 were constructed to represent the tripodal(2I) and Ti/defect sites. It was found that the confinement of the zeolite pore of channel not only impacts the adsorption stability of guest molecules but also alters reaction barriers, as compared to the results obtained based on small cluster models. When dispersion corrections were considered, an enhancement of the adsorption stability of guest molecules was observed because of the important contribution from van der Waals interactions, especially for propylene adsorption. An explicit protic methanol molecule was introduced into the catalytic system to probe the influence of the solvent on propylene epoxidation, based on which a significant enhancement of CH3OH-H2O2 co-adsorption was obtained owing to H-bond formation. More importantly, the energy barrier for H2O2 dissociation was largely reduced by similar to 13 kcal/mol because of the participation of the methanol in the H-transfer process and the formation of H-bond network, resulting in an alteration of the rate-limiting step. By comparison, adding an aprotic acetonitrile solvent did not have substantial effect on reaction path and kinetics. The calculation results clearly demonstrate the important role of the protic methanol solvent, which not only strengthens the adsorption of guest molecules but also promotes the kinetics for propylene epoxidation with H(2)O(2)over TS-1 catalyst.
机译:进行密度函数理论(DFT)计算以研究沸石限制和溶剂对钛硅沸石-1(TS-1)催化剂的H2O2对丙烯环氧化的影响。构建包含典型10MR通道的TS-1通道的144T和143T群模型以表示三码头(2I)和TI /缺陷位点。结果发现,与基于小型簇模型获得的结果相比,沸石孔的限制不仅影响了客体分子的吸附稳定性,而且改变了反应屏障。考虑了分散校正时,观察到客体分子的吸附稳定性的增强,因为Van der WaaS相互作用的重要贡献,特别是对于丙烯吸附。将显特性甲醇分子引入催化系统中以探测溶剂对丙烯环氧化的影响,基于该丙烯环氧化的影响是基于其由于H键形成而获得CH 3 OH-H 2 O 2共吸收的显着增强。更重要的是,由于甲醇在H-转移过程中的参与和H键网络的形成,相似的H 2 O 2解离的能量屏障大大降低,导致H键网络的形成,导致速率限制的改变步。相比之下,添加非质子乙腈溶剂对反应路径和动力学没有显着作用。计算结果清楚地证明了质子甲醇溶剂的重要作用,这不仅增强了客体分子的吸附,而且还促进了H(2)O(2)在TS-1催化剂上用H(2)O(2)的丙烯环氧化的动力学。

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