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Hydrogen bonding in acetylacetaldehyde: Theoretical insights from the theory of atoms in molecules
Author(s) -
Nowroozi A.,
Jalbout A. F.,
Roohi H.,
Khalilinia E.,
Sadeghi M.,
de Leon A.,
Raissi H.
Publication year - 2009
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.21830
Subject(s) - natural bond orbital , tautomer , ab initio , enol , chemistry , molecule , computational chemistry , atoms in molecules , conformational isomerism , hydrogen bond , density functional theory , stereochemistry , organic chemistry , catalysis
Abstract All the possible conformations of tautomeric structures (keto and enol) of acetylacetaldehyde (AAD) were fully optimized at HF, B3LYP, and MP2 levels with 6‐31G(d,p) and 6‐311++G(d,p) basis sets to determine the conformational equilibrium. Theoretical results show that two chelated enol forms have extra stability with respect to the other conformers, but identification of global minimum is very difficult. The high level ab initio calculations G2(MP2) and CBS‐QB3) also support the HF conclusion. It seems that the chelated enol forms have equal stability, and the energy gap between them is probably lies in the computational error range. Finally, the analysis of hydrogen bond in these molecules by quantum theory of atoms in molecules (AIM) and natural bond orbital (NBO) methods fairly support the ab initio results. © 2009 Wiley Periodicals, Inc. Int J Quantum Chem, 2009