paper

Role of Internal Motions and Molecular Geometry on the NMR Relaxation of Hydrocarbons

arXiv:1801.07803 · doi:10.1063/1.5023240

Abstract

The role of internal motions and molecular geometry on H NMR relaxation times in hydrocarbons is investigated using MD (molecular dynamics) simulations of the autocorrelation functions for in{\it tra}molecular and in{\it ter}molecular H-H dipole-dipole interactions arising from rotational () and translational () diffusion, respectively. We show that molecules with increased molecular symmetry such as neopentane, benzene, and isooctane show better agreement with traditional hard-sphere models than their corresponding straight-chain -alkane, and furthermore that spherically-symmetric neopentane agrees well with the Stokes-Einstein theory. The influence of internal motions on the dynamics and relaxation of -alkanes are investigated by simulating rigid -alkanes and comparing with flexible (i.e. non-rigid) -alkanes. Internal motions cause the rotational and translational correlation-times to get significantly shorter and the relaxation times to get significantly longer, especially for longer-chain -alkanes. Site-by-site simulations of H's along the chains indicate significant variations in and across the chain, especially for longer-chain -alkanes. The extent of the stretched (i.e. multi-exponential) decay in the autocorrelation functions are quantified using inverse Laplace transforms, for both rigid and flexible molecules, and on a site-by-site bases. Comparison of measurements with the site-by-site simulations indicate that cross-relaxation (partially) averages-out the variations in and across the chain of long-chain -alkanes. This work also has implications on the role of nano-pore confinement on the NMR relaxation of fluids in the organic-matter pores of kerogen and bitumen.