NMR Spin-Rotation Relaxation and Diffusion of Methane
Abstract
The translational-diffusion coefficient and the spin-rotation contribution to the H NMR relaxation time for methane (CH) are investigated using MD (molecular dynamics) simulations, over a wide range of densities and temperatures , spanning the liquid, supercritical, and gas phases. The simulated agree well with measurements, without any adjustable parameters in the interpretation of the simulations. A minimization technique is developed to compute the angular-velocity for non-rigid spherical molecules, which is used to simulate the autocorrelation function for spin-rotation interactions. With increasing (i.e. decreasing ), shows increasing deviations from the single-exponential decay predicted by the Langevin theory for hard spheres, and the deviations are quantified using inverse Laplace transforms of . is derived from using the kinetic model "km" for gases (), and the diffusion model "dm" for liquids (). shows better agreement with measurements at higher , while shows better agreement with measurements at lower . is shown to dominate over the MD simulated H-H dipole-dipole relaxation at high , while the opposite is found at low . At high , the simulated spin-rotation correlation-time agrees with the kinetic collision time for gases, from which a new relation is inferred, without any adjustable parameters.
Keywords
Cite
@article{arxiv.1802.10191,
title = {NMR Spin-Rotation Relaxation and Diffusion of Methane},
author = {Philip M. Singer and D. Asthagiri and Walter G. Chapman and George J. Hirasaki},
journal= {arXiv preprint arXiv:1802.10191},
year = {2018}
}