Single Molecule Nanospectroscopy Visualizes Proton-Transfer Processes within a Zeolite Crystal
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2016-10-19
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Abstract
Visualizing proton-transfer processes at the nanoscale is essential for understanding the reactivity of zeolite-based catalyst materials. In this work, the Brønsted-acid-catalyzed oligomerization of styrene derivatives was used for the first time as a single molecule probe reaction to study the reactivity of individual zeolite H-ZSM-5 crystals in different zeolite framework, reactant and solvent environments. This was accomplished via the formation of distinct dimeric and trimeric fluorescent carbocations, characterized by their different photostability, as detected by single molecule fluorescence microscopy. The oligomerization kinetics turned out to be very sensitive to the reaction conditions and the presence of the local structural defects in zeolite H-ZSM-5 crystals. The remarkably photostable trimeric carbocations were found to be formed predominantly near defect-rich crystalline regions. This spectroscopic marker offers clear prospects for nanoscale quality control of zeolite-based materials. Inter...
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Ristanovic, Z, Kubarev, A V, Hofkens, J, Roeffaers, M B J & Weckhuysen, B M 2016, 'Single Molecule Nanospectroscopy Visualizes Proton-Transfer Processes within a Zeolite Crystal', Journal of the American Chemical Society, vol. 138, no. 41, pp. 13586-13596. https://doi.org/10.1021/jacs.6b06083