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Theoretical study of the structural, vibrational, and topologic properties of the charge distribution of the molecular complexes between thiophene and Brönsted acid sites of zeolites
Author(s) -
Soscún Humberto,
Castellano Olga,
Hernández Javier,
Hinchliffe Alan
Publication year - 2001
Publication title -
international journal of quantum chemistry
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.484
H-Index - 105
eISSN - 1097-461X
pISSN - 0020-7608
DOI - 10.1002/qua.1087
Subject(s) - thiophene , chemistry , zeolite , computational chemistry , hydrogen bond , basis set , molecule , molecular vibration , crystallography , density functional theory , organic chemistry , catalysis
The main interaction between thiophene and zeolites leads to the formation of a hydrogen bond between the S atom of thiophene and the OH group of zeolites, giving 1:1 stable molecular complexes. The present work reports a theoretical study about the structural, vibrational, and topologic properties of the charge distribution of the molecular complexes between thiophene and a series of Brönsted acid sites of zeolites, modeled as the H 3 SiOHAlH 3 (B 1 ), (OH) 3 Si(OH)Al(OH) 3 (B 1 OH), and H 3 Si(OH)Al(OH) 2 OSiH 3 (B 2 ) clusters. The studied properties were calculated at a Hartree–Fock level with the standard 6‐31+G(d,p) basis set. Additionally, electron correlation effects for geometric and vibrational properties were evaluated at second‐order Møller–Plesset (MP2) and BLYP for B 1 –thiophene complex, whereas the BLYP technique was employed for the complexes of thiophene with B 1 OH and B2 clusters. Symmetry restriction was considered for structure calculations, being C 2 v for thiophene, C s for zeolite clusters, and C s linear conformation for the complexes. It was found that these linear thiophene–zeolite complexes reproduce the tendencies in the experimental frequency shifts of the OH vibration mode from the adsorption of thiophene in ZSM5 zeolites. The topologic properties of the complexes give a pattern for the interaction of thiophene–zeolite. The results are compared with previous ones from silanol–thiophene calculations. © 2001 John Wiley & Sons, Inc. Int J Quantum Chem, 2001