Nuclear relaxation processes of paramagnetic complexes The slow-motion case
- 1 February 1976
- journal article
- research article
- Published by Taylor & Francis in Molecular Physics
- Vol. 31 (2) , 347-355
- https://doi.org/10.1080/00268977600100261
Abstract
The nuclear relaxation mechanism in tumbling paramagnetic molecules is a superposition of two processes, the usual ‘S-mechanism’ and an additional ‘χ-mechanism’. The latter arises from the thermal average of the electron spin polarization and is conveniently described in terms of the molecular susceptibility χ. Expressions for T 1 and T 2 due to χ-relaxation are derived. The χ-contribution is appreciable in cases where the rotational correlation time is four orders of magnitude longer than the electron spin relaxation time. The χ-relaxation rates increase quadratically with the external field. The effects of anisotropic susceptibility and of chemical exchange are considered. It is shown that in certain important cases the N.M.R. line width is not determined by the chemical exchange rate, even when it is much faster than the tumbling rate.Keywords
This publication has 6 references indexed in Scilit:
- Orientation dependent spin density matrix of tumbling molecules in thermal equilibriumThe Journal of Chemical Physics, 1974
- Nuclear Relaxation Induced by Paramagnetic Ions Having Anisotropic g FactorsThe Journal of Chemical Physics, 1965
- Theory of Linewidths in Electron Spin Resonance SpectraThe Journal of Chemical Physics, 1963
- Proton Relaxation Times in Paramagnetic Solutions. Effects of Electron Spin RelaxationThe Journal of Chemical Physics, 1961
- Isotropic Nuclear Resonance ShiftsThe Journal of Chemical Physics, 1958
- Relaxation Processes in a System of Two SpinsPhysical Review B, 1955