## Abstract ^1^H and ^13^C NMR spectra are reported and assigned for imidazo[1,2‐__a__] pyrazine and for __N__‐1‐methyl‐ and __N__‐7‐methyl‐imidazo[1,2‐__a__] pyrazinium iodides. The effect of protonation on the chemical shifts of the parent molecule is demonstrated, and through the use of ^13^C an
Structure and protonation study of the imidazo [1,2-a]-pyrimidine system in 1H nuclear magnetic resonance
✍ Scribed by Leonardo Marchetti; Luciano Pentimalli; Paolo Lazzeretti; Luisa Schenetti; Ferdinando Taddei
- Publisher
- John Wiley and Sons
- Year
- 1975
- Tongue
- English
- Weight
- 491 KB
- Volume
- 7
- Category
- Article
- ISSN
- 0749-1581
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✦ Synopsis
Abstract
The ^1^H NMR spectra of imidazo [1,2‐a]pyrimidine derivatives have been analysed to study the aromatic character and protonation behaviour of this system. By employing the ‘ring currentn’ model and calculations based on the coupled Hartree‐Fock method it can be deduced that a large π‐electron delocalisation exists in this heterocyclic system and affects the screening constant of the protons. Charge density schemes obtained by SCF techniques agree with the reactivity behaviour of these molecules.
A detailed study of protonation carried out by following the ^1^H NMR spectra both in trifluoroacetic acid and in aqueous hydrochloric acid shows that the most probable site of protonation is N‐1, but leaves open the possibility of a rapid exchange of one proton between N‐1 and N‐8.
📜 SIMILAR VOLUMES
## Abstract __J__(^13^C^1^H) coupling constants for some methyl‐ and aminopyrimidines have been determined by ^13^C NMR. Both the one‐bond and long‐bond and long‐range coupling constants follow general trends which can be summarized in a few simple rules. In particular, the ^3^__J__(C‐i,H) coupling
## Abstract The tautomerism and protonation of the putative inotropic 2‐(2′,4′‐dimethoxy)phenyl‐1__H__‐imidazo[1,2‐__a__]imidazole (2) has been studied in several solvents by comparing its ^1^H and ^13^C chemical shifts with those of its 1‐ and 7‐methyl derivatives 3 and 4, respectively, and acid s
## Abstract Carbon‐13 NMR spectra of some polychlorinated 2‐phenoxyphenols have been obtained. The substituent chemical shifts obtained by varying the chlorine substitution pattern of one ring are very similar to those reported for the corresponding diphenyl ethers. Thus, the replacement of a 2‐chl