Rotational memory function of SPC/E water
Abstract
Memory effects are essential for the dynamics of condensed materials and are responsible for non-exponential relaxation of correlation functions of dynamic variables through the memory function. Memory functions of dipole rotations for water have never been calculated directly from molecular dynamics simulations. We present here calculations of memory functions for single-dipole rotations and for the overall dipole moment of the sample for SPC/E water. The normalized memory functions for single-particle and collective dipole dynamics turn out to be nearly identical. This result validates theories of dielectric spectroscopy in terms of single-particle time correlation functions and the connection between the collective and single-particle relaxation times through the Kirkwood factor. The dielectric function in this formalism contains no new dynamic information that does not exist in the single-dipole correlation function. A short memory time, ≲1 fs, justifies the use of the mathematics of rotational diffusion to describe the dynamics of a single molecular dipole moment in bulk water. An analytical equation for the rotational memory time is derived.
Article Details
Journal Info
The Journal of Chemical Physics
American Institute of Physics
Authors (2)
Dilipkumar N. Asthagiri
Oak Ridge National Laboratory 1 , Oak Ridge, Tennessee 37830,
Dmitry V. Matyushov
School of Molecular Sciences, Department of Physics and Center for Biological Physics, Arizona State University 2 , P.O. Box 871504, Tempe, Arizona 85287-1504,