Nuclear magnetic resonance signal dynamics of liquids in the presence of distant dipolar fields, revisited

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Abstract

The description of the nuclear magnetic resonance magnetization dynamics in the presence of long-range dipolar interactions, which is based upon approximate solutions of Bloch-Torrey equations including the effect of a distant dipolar field, has been revisited. New experiments show that approximate analytic solutions have a broader regime of validity as well as dependencies on pulse-sequence parameters that seem to have been overlooked. In order to explain these experimental results, we developed a new method consisting of calculating the magnetization via an iterative formalism where both diffusion and distant dipolar field contributions are treated as integral operators incorporated into the Bloch-Torrey equations. The solution can be organized as a perturbative series, whereby access to higher order terms allows one to set better boundaries on validity regimes for analytic first-order approximations. Finally, the method legitimizes the use of simple analytic first-order approximations under less demanding experimental conditions, it predicts new pulse-sequence parameter dependencies for the range of validity, and clarifies weak points in previous calculations. © 2009 American Institute of Physics.

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Barros, W., Gochberg, D. F., & Gore, J. C. (2009). Nuclear magnetic resonance signal dynamics of liquids in the presence of distant dipolar fields, revisited. Journal of Chemical Physics, 130(17). https://doi.org/10.1063/1.3116107

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