The origin of the Stokes–Einstein relation in simple dense liquids

T T. Oppelstrup (Cerebras Systems Inc. 1 , Sunnyvale, California 94085,) B B. Sadigh (Lawrence Livermore National Laboratory 2 , Livermore, California 94550,) S S. Sastry (Javaharlal Nehru Centre for Advanced Scientific Research, Jakkur Campus 3 , Bangalore 560064,) M M. Dzugutov (Department of Chemistry-Ångström, Uppsala University 4 , 75121 Uppsala,)

Abstract

We investigate the origin of the universal relation between structural relaxation and diffusion in simple dense liquids, known as the Stokes–Einstein (SE) relation. The fact that this relation, originally derived from a hydrodynamic model of a macroscopic particle in a viscous medium, can describe the microscopic-scale liquid dynamics still eludes understanding. We introduce a new universal measure of structural relaxation in a system of N identical particles based on an explicit decomposition of the configuration space into N! congruent convex polyhedra. This measure makes it possible to quantify the correlation between two distinct particle configurations in terms of their minimal Euclidean distance, optimized with respect to particle permutations. Using this measure alongside a model of independent random walkers under the single-occupancy constraint, we derive a master equation that quantifies the SE relation. It allows us to demonstrate that the universal relation between structural relaxation and diffusion in simple dense liquids is caused by two conditions: (a) the confinement of the dominant density fluctuations to the first coordination shell, manifested by de Gennes narrowing, and (b) Gaussianity of the diffusion process; the former is shown to be violated in low-density fluids, and the latter is known to be violated in supercooled liquids.

Article Details

Volume / Issue Vol. 163, Issue 16
Published October 28, 2025
ISSN 0021-9606
Publisher American Institute of Physics

Journal Info

The Journal of Chemical Physics

American Institute of Physics

ISSN: 0021-9606 Physical Sciences

Authors (4)

T

T. Oppelstrup

Cerebras Systems Inc. 1 , Sunnyvale, California 94085,

B

B. Sadigh

Lawrence Livermore National Laboratory 2 , Livermore, California 94550,

S

S. Sastry

Javaharlal Nehru Centre for Advanced Scientific Research, Jakkur Campus 3 , Bangalore 560064,

M

M. Dzugutov

Department of Chemistry-Ångström, Uppsala University 4 , 75121 Uppsala,