Understanding the concept of basicity in zeolites. A DFT study of the methylation of Al-O-Si bridging oxygen atoms

被引:26
作者
Mignon, Pierre
Geerlings, Paul
Schoonheydt, Robert
机构
[1] Centrum Oppervlaktechem Katalyse, B-3001 Heverlee, Belgium
[2] Vrije Univ Brussels, ALGC, B-1050 Brussels, Belgium
关键词
D O I
10.1021/jp064762d
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
DFT calculations on a 4-ring cluster and on ONIOM models of faujasite were carried out to assess the concept of basicity in zeolites, exchanged with alkali cations. The considered reaction is the methylation of the SiO-Al bridging oxygen by methanol and methyl iodide. The reaction involves both the dissociation of the H3C-OH or H3C-I bonds and the formation of the C-O-zeolite bond. The former involves the hardness of the alkaline cation. The latter reflects the charge density of the basic oxygen, well described by the "hard" descriptor: the molecular electrostatic potential. The harder is the alkali metal, the easier is the H3C-OH or H3C-I bond dissociation, and the lower is the basicity of the bridging oxygen, and thus the more difficult is the C-O-zeolite bond formation. The fact that these two processes compete has been established by comparing the energy profiles for the methylation with methyl iodide and methanol. For methanol the role of the alkaline metal on the bond dissociation prevails because of the larger hardness of the OH group as compared to that of the iodine atom. For methyl iodide the oxygen basicity prevails over the interaction of I with metal. This study clearly shows that in both experimental and theoretical studies the role of the Lewis acidity or hardness of the alkali metal ion and the role of the basicity of the framework oxygen have to be separated from each other for a good interpretation of zeolite basicity. Also, the hardness of the probe molecule is particularly important when considering the interaction with the alkali metal ion.
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页码:24947 / 24954
页数:8
相关论文
共 58 条
[41]   Local softness versus local density of states as reactivity index [J].
Nguyen, LT ;
De Proft, F ;
Amat, MC ;
Van Lier, G ;
Fowler, PW ;
Geerlings, P .
JOURNAL OF PHYSICAL CHEMISTRY A, 2003, 107 (35) :6837-6842
[42]   Conversion of chloromethane to light olefins catalyzed by ZSM-5 zeolites [J].
Noronha, LA ;
Souza-Aguiar, EF ;
Mota, CJA .
CATALYSIS TODAY, 2005, 101 (01) :9-13
[43]   Modeling physisorption with the ONIOM method:: the case of NH3 at the isolated hydroxyl group of the silica surface [J].
Roggero, I ;
Civalleri, B ;
Ugliengo, P .
CHEMICAL PHYSICS LETTERS, 2001, 341 (5-6) :625-632
[44]   Local softness and hardness based reactivity descriptors for predicting intra- and intermolecular reactivity sequences: Carbonyl compounds [J].
Roy, RK ;
Krishnamurti, S ;
Geerlings, P ;
Pal, S .
JOURNAL OF PHYSICAL CHEMISTRY A, 1998, 102 (21) :3746-3755
[45]   A periodic DFT study of intramolecular isomerization reactions of toluene and xylenes catalyzed by acidic mordenite [J].
Rozanska, X ;
van Santen, RA ;
Hutschka, F ;
Hafner, J .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2001, 123 (31) :7655-7667
[46]   ELECTRONEGATIVITY AND BOND-ENERGY [J].
SANDERSON, RT .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 1983, 105 (08) :2259-2261
[47]   Local reactivity index defined through the density of states describes the basicity of alkaline-exchanged zeolites [J].
Santos, JC ;
Contreras, R ;
Chamorro, E ;
Fuentealba, P .
JOURNAL OF CHEMICAL PHYSICS, 2002, 116 (10) :4311-4316
[49]  
Thibault-Starzyk F, 2005, STUD SURF SCI CATAL, V158, P663
[50]   Local structure of the zeolitic catalytically active site during reaction [J].
van Bokhoven, JA ;
van der Eerden, AMJ ;
Prins, R .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2004, 126 (14) :4506-4507