## Abstract The ^1^H and ^13^C NMR spectra of __s__βtrioxane partially oriented in three nematic solvents were analysed, and the measured dipolar coupling constants, corrected for harmonic vibrations and for correlated deformation, were used to obtain information about the __r__~Ξ±~ structure of the
Determination of molecular structure by NMR using low order orientation in bicelles
β Scribed by S Vivekanandan; Anu Joy; N Suryaprakash
- Publisher
- Elsevier Science
- Year
- 2004
- Tongue
- English
- Weight
- 181 KB
- Volume
- 694
- Category
- Article
- ISSN
- 0022-2860
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β¦ Synopsis
NMR spectra of molecules oriented in liquid crystalline phase provide information on the structure and orientation of the molecules. Thermotropic liquid crystals used for such a purpose as orienting media result in the spectra of spins that are generally strongly coupled unless heteronuclei are involved. The analyses of such spectra are carried out by diagonalising the Hamiltonian numerically, adopting the least square techniques. Phospholipid bicelles on the other hand are weak orienting systems which provides well-resolved proton and carbon spectra of spins that are, in general, weakly coupled. A spin system which is of the type AA 0 BB 0 C in thermotropic liquid crystal behaves as AA 0 MM 0 X type in bicelles. Though the resultant spectrum is not always first order, nevertheless, the estimate of the proton-proton and proton-carbon dipolar couplings and the chemical shifts can be made from the spectrum directly. The use of such a media as an alternative to thermotropic liquid crystalline phase for the determination of the structure of small molecules is demonstrated in this paper. The molecule pyridine is chosen for such a purpose. The structure of pyridine, including 13 C spins, in both bicelle and thermotropic nematic phase have been determined.
π SIMILAR VOLUMES
The NMR spectrum of phenol, dissolved in a nematic solvent, is explainable in terms of two averaging planar structures for each of which the principle axis of orientation in the ring is on the opposite side of the oxygen atom from the hydroxyl proton. External hydrogen bonding to the solvent seems t
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