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Fast detection and structural identification of carbocations on zeolites by dynamic nuclear polarization enhanced solid-state NMR

机译:动态核极化增强固态NMR快速检测和鉴定沸石上的碳正离子

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摘要

Acidic zeolites are porous aluminosilicates used in a wide range of industrial processes such as adsorption and catalysis. The formation of carbocation intermediates plays a key role in reactivity, selectivity and deactivation in heterogeneous catalytic processes. However, the observation and determination of carbocations remain a significant challenge in heterogeneous catalysis due to the lack of selective techniques of sufficient sensitivity to detect their low concentrations. Here, we combine 13C isotopic enrichment and efficient dynamic nuclear polarization magic angle spinning nuclear magnetic resonance spectroscopy to detect carbocations in zeolites. We use two dimensional 13C–13C through-bond correlations to establish their structures and 29Si–13C through-space experiments to quantitatively probe the interaction between multiple surface sites of the zeolites and the confined hydrocarbon pool species. We show that a range of various membered ring carbocations are intermediates in the methanol to hydrocarbons reaction catalysed by different microstructural β-zeolites and highlight that different reaction routes for the formation of both targeted hydrocarbon products and coke exist. These species have strong van der Waals interaction with the zeolite framework demonstrating that their accumulation in the channels of the zeolites leads to deactivation. These results enable understanding of deactivation pathways and open up opportunities for the design of catalysts with improved performances.
机译:酸性沸石是多孔铝硅酸盐,广泛用于工业过程中,例如吸附和催化。碳正离子中间体的形成在非均相催化过程中的反应性,选择性和失活中起关键作用。然而,由于缺乏足够灵敏的检测低浓度碳的选择性技术,碳阳离子的观察和测定在多相催化中仍然是一个重大挑战。在这里,我们结合了 13 C同位素富集和高效的动态核极化魔角旋转核磁共振波谱技术来检测沸石中的碳正离子。我们使用二维 13 C– 13 C穿透键相关建立结构,并使用 29 Si– 13 C穿越空间实验可定量探查沸石的多个表面部位与受限的碳氢化合物库之间的相互作用。我们表明,各种不同的成员环碳正离子是甲醇在由不同的微结构β-沸石催化的烃反应中的中间体,并突出表明存在用于形成目标烃产物和焦炭的不同反应路线。这些物质与沸石骨架具有很强的范德华相互作用,表明它们在沸石通道中的积累导致失活。这些结果使人们能够了解失活途径,并为性能改进的催化剂设计提供了机会。

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