Ak. Chandra et al., Density functional calculations on simple carbonyl bases: protonation and hydrogen bond formation with water, CHEM PHYS, 255(2-3), 2000, pp. 149-163
Density functional theory (B3LYP) calculations combined with the 6-31++G(d,
p) basis set have been carried out on protonated carbonyl bases RHC=O (R =
F, CH3, NH2) and R2C=O (R = F, H, CH3). The substituent effects on the equi
librium structures and vibrational frequencies of protonated bases are disc
ussed. Protonation results in spectacular changes of the CF and CH bond len
gths and the frequencies and intensities of the nu(CF) and nu(CH) stretchin
g vibrations. These features are discussed in terms of the lone pair effect
. Correlations between the nu(OH) and nu(CK) stretching frequencies and the
corresponding OH and CH distances are presented. The relative changes of d
istances and angles are on the average 10 times higher for protonation than
for hydrogen bond formation. The hydrogen bond energies are linearly corre
lated to the proton affinities of the corresponding sites and positive depa
rtures from the linearity are observed for closed dimers where the distance
between the hydrogen atom of the substituent and the (C) atom of water is
lower than 2.5 Angstrom. Cooperativities evaluated from infrared frequency
shifts are different and seem to be more sensitive to the angular propertie
s. (C) 2000 Elsevier Science B.V. All rights reserved.