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Molecular dynamics simulations of NMR relaxation and diffusion of bulk hydrocarbons and water.

Authors :
Singer PM
Asthagiri D
Chapman WG
Hirasaki GJ
Source :
Journal of magnetic resonance (San Diego, Calif. : 1997) [J Magn Reson] 2017 Apr; Vol. 277, pp. 15-24. Date of Electronic Publication: 2017 Feb 03.
Publication Year :
2017

Abstract

Molecular dynamics (MD) simulations are used to investigate <superscript>1</superscript> H nuclear magnetic resonance (NMR) relaxation and diffusion of bulk n-C <subscript>5</subscript> H <subscript>12</subscript> to n-C <subscript>17</subscript> H <subscript>36</subscript> hydrocarbons and bulk water. The MD simulations of the <superscript>1</superscript> H NMR relaxation times T <subscript>1,2</subscript> in the fast motion regime where T <subscript>1</subscript> =T <subscript>2</subscript> agree with measured (de-oxygenated) T <subscript>2</subscript> data at ambient conditions, without any adjustable parameters in the interpretation of the simulation data. Likewise, the translational diffusion D <subscript>T</subscript> coefficients calculated using simulation configurations agree with measured diffusion data at ambient conditions. The agreement between the predicted and experimentally measured NMR relaxation times and diffusion coefficient also validate the forcefields used in the simulation. The molecular simulations naturally separate intramolecular from intermolecular dipole-dipole interactions helping bring new insight into the two NMR relaxation mechanisms as a function of molecular chain-length (i.e. carbon number). Comparison of the MD simulation results of the two relaxation mechanisms with traditional hard-sphere models used in interpreting NMR data reveals important limitations in the latter. With increasing chain length, there is substantial deviation in the molecular size inferred on the basis of the radius of gyration from simulation and the fitted hard-sphere radii required to rationalize the relaxation times. This deviation is characteristic of the local nature of the NMR measurement, one that is well-captured by molecular simulations.<br /> (Copyright © 2017 Elsevier Inc. All rights reserved.)

Details

Language :
English
ISSN :
1096-0856
Volume :
277
Database :
MEDLINE
Journal :
Journal of magnetic resonance (San Diego, Calif. : 1997)
Publication Type :
Academic Journal
Accession number :
28189994
Full Text :
https://doi.org/10.1016/j.jmr.2017.02.001