» Articles » PMID: 16240035

Characterization of Framework and Extra-framework Aluminum Species in Non-hydrated Zeolites Y by 27Al Spin-echo, High-speed MAS, and MQMAS NMR Spectroscopy at B0 = 9.4 to 17.6 T

Overview
Specialties Biophysics
Chemistry
Date 2005 Oct 22
PMID 16240035
Citations 11
Authors
Affiliations
Soon will be listed here.
Abstract

27Al spin-echo, high-speed MAS (nu(rot) = 30 kHz), and MQMAS NMR spectroscopy in magnetic fields of B0 = 9.4, 14.1, and 17.6 T were applied for the study of aluminum species at framework and extra-framework positions in non-hydrated zeolites Y. Non-hydrated gamma-Al2O3 and non-hydrated aluminum-exchanged zeolite Y (Al,Na-Y) and zeolite H,Na-Y were utilized as reference materials. The solid-state 27Al NMR spectra of steamed zeolite deH,Na-Y/81.5 were found to consist of four signals. The broad low-field signal is caused by a superposition of the signals of framework aluminum atoms in the vicinity of bridging hydroxyl protons and framework aluminum atoms compensated in their negative charge by aluminum cations (delta(iso) = 70 +/- 10 ppm, C(QCC) = 15.0 +/- 1.0 MHz). The second signal is due to a superposition of the signals of framework aluminum atoms compensated by sodium cations and tetrahedrally coordinated aluminum atoms in neutral extra-framework aluminum oxide clusters (delta(iso) = 65 +/- 5 ppm, C(QCC) = 8.0 +/- 0.5 MHz). The residual two signals were attributed to aluminum cations (delta(iso) = 35 +/- 5 ppm, C(QCC) = 7.5 +/- 0.5 MHz) and octahedrally coordinated aluminum atoms in neutral extra-framework aluminum oxide clusters (delta(iso) = 10 +/- 5 ppm, C(QCC) = 5.0 +/- 0.5 MHz). By chemical analysis and evaluating the relative solid-state 27Al NMR intensities of the different signals of aluminum species occurring in zeolite deH,Na-Y/81.5 in the non-hydrated state, the aluminum distribution in this material was determined.

Citing Articles

Global optimization of extraframework ensembles in zeolites: structural analysis of extraframework aluminum species in MOR and MFI zeolites.

Khramenkova E, Venkatraman H, Soethout V, Pidko E Phys Chem Chem Phys. 2022; 24(44):27047-27054.

PMID: 36321744 PMC: 9673684. DOI: 10.1039/d2cp03603g.


Recent advances in solid-state NMR of zeolite catalysts.

Wang W, Xu J, Deng F Natl Sci Rev. 2022; 9(9):nwac155.

PMID: 36131885 PMC: 9486922. DOI: 10.1093/nsr/nwac155.


Insight into the active site nature of zeolite H-BEA for liquid phase etherification of isobutylene with ethanol.

Vlasenko N, Kochkin Y, Telbiz G, Shvets O, Strizhak P RSC Adv. 2022; 9(62):35957-35968.

PMID: 35540596 PMC: 9074949. DOI: 10.1039/c9ra07721a.


Revealing Brønsted Acidic Bridging SiOHAl Groups on Amorphous Silica-Alumina by Ultrahigh Field Solid-State NMR.

Wang Z, Chen K, Jiang Y, Trebosc J, Yang W, Amoureux J J Phys Chem Lett. 2021; 12(47):11563-11572.

PMID: 34806885 PMC: 9162276. DOI: 10.1021/acs.jpclett.1c02975.


Analysis of the Chemical State in Y-zeolite Pores by Positron Annihilation Lifetime Spectroscopy.

Chiari L, Ohnuki C, Fujinami M Anal Sci. 2021; 37(8):1117-1122.

PMID: 33431738 DOI: 10.2116/analsci.20P416.