Sj. Schvaneveldt et Rf. Loring, STATIC AND DYNAMIC VIBRATIONAL DEPHASING IN A DENSE FLUID, The Journal of chemical physics, 104(12), 1996, pp. 4736-4745
We present a theory of the statically broadened vibrational line shape
of a molecule in liquid solution. In this limit of static broadening,
the molecule vibrates in a static potential posed by fixed solvent mo
lecules in a configuration chosen from the equilibrium distribution of
fluid configurations. The line shape is calculated within the instant
aneous normal mode approximation, in which the solute's potential is a
pproximated by a harmonic surface whose curvature agrees with that of
the exact potential at the solute's initial configuration. Within this
approximation, the line shape is related to a configuration-averaged
phonon Green's function, which is calculated approximately with an ana
lytical procedure. This theory represents a modification of our previo
us treatment of vibrational line shapes [J. Chem. Phys. 102, 2326 (199
5)], in which the solvent dynamics were included. Comparison of the li
ne shapes for static and dynamic solvents permits determination of the
relative importance of static (inhomogeneous) and dynamic (homogeneou
s) contributions to line broadening. We carry out such comparisons for
a harmonic diatomic in a Lennard-Jones solvent over a wide range of t
emperature and density. (C) 1996 American Institute of Physics.