4.8 Article

Effect of aluminium distribution in the framework of ZSM-5 on hydrocarbon transformation.: Cracking of 1-butene

期刊

JOURNAL OF CATALYSIS
卷 254, 期 2, 页码 180-189

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ACADEMIC PRESS INC ELSEVIER SCIENCE
DOI: 10.1016/j.jcat.2007.12.005

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H-ZSM-5; Al distribution; catalytic cracking; zeolite acidity; IR spectra H-2; cracking of olefins

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The effect of the distribution of Al atoms in the framework of H-ZSM-5. controlled by zeolite synthesis, on the product yields in I-butene conversion to low olefins, aromatics and paraffins has been investigated for a series of zeolites, both synthesized and commercial, with Si/Al ranging from 12.6 to 43.6. The Al-27 and Si-29 MAS NMR of the corresponding Na-ZSM-5 and their exchange capacities for Co(II) ions and quantitative analysis of d-d transitions of bare Co(II) ions in the dehydrated CoNa-ZSM-5 were used for determination of the population of the [Al-O-(Si-O)(n)-Al] sequences in the framework. The Si-Al sequences with n = 1 were not present in the synthesized or commercial samples. The exchange capacity of Co(II) ions corresponded to the concentration of close framework A] atoms present mostly in the six-membered framework rings (n = 2) of the cationic sites. The concentration of single Al atoms was calculated from the difference between the total concentration of A] and twice the concentration of the exchanged Co(II) ions. The enhanced formation of aromatics in I-butene conversion for H-ZSM-5 with similar Si/Al ratio, but higher concentration of close Al atoms in the framework is accounted for enhancing the rate of hydrogen transfer reactions, in contrast to samples with higher concentration of single Al atoms, where olefin cracking is preferred. As low-temperature (20 K) IR analysis of adsorbed hydrogen showed that the acid strength of the protonic sites in the H-ZSM-5 samples is very similar, the differences in the selectivity of 1-butene cracking and aromatization are thought to be caused by different distribution of framework Al atoms and thus also of the protonic sites. This finding opens a new potential for advanced tailoring of zeolite catalyst selectivity. (C) 2007 Elsevier Inc. All rights reserved.

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