The response of a hydrogen-bonded formamide-ammonia complex to an approaching water molecule has been studied by means of ab initio SCF molecular-orbital calculations. Depending on the site of interaction, the major hydrogen bond in the formamide-ammonia system undergoes modifications ranging from s
Hydrogen bond and the resonance effect on the formamide–water complexes
✍ Scribed by Renato L. T. Parreira; Giovanni F. Caramori; Nelson H. Morgon; Sérgio E. Galembeck
- Publisher
- John Wiley and Sons
- Year
- 2011
- Tongue
- English
- Weight
- 858 KB
- Volume
- 112
- Category
- Article
- ISSN
- 0020-7608
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✦ Synopsis
Abstract
The interaction of formamide and the two transition states of its amide group rotation with one, two, or three water molecules was studied in vacuum. Great differences between the electronic structure of formamide in its most stable form and the electronic structure of the transition states were noticed. Intermolecular interactions were intense, especially in the cases where the solvent interacted with the amide and the carbonyl groups simultaneously. In the transition states, the interaction between the lone pair of nitrogen and the water molecule becomes important. With the aid of the natural bond orbitals, natural resonance theory, and electron localization function (ELF) analyses an increase in the resonance of planar formamide with the addition of successive water molecules was observed. Such observation suggests that the hydrogen bonds in the formamide–water complexes may have some covalent character. These results are also supported by the quantitative ELF analyses. © 2011 Wiley Periodicals, Inc. Int J Quantum Chem, 2012
📜 SIMILAR VOLUMES
The effect of changing the L C=O -. \* H on the energy of the linear hydrogen bond has been studied by ab initio calculations for one formamide-methane complex and two formamide-water complexes, which differ in the position of the second hydrogen (H2,) of the water molecule (i.e. the one not involve