Computer simulation studies of aqueous solutions at ambient and supercritical conditions using effective pair potential and polarizable potential models for water
S. Koneshan et al., Computer simulation studies of aqueous solutions at ambient and supercritical conditions using effective pair potential and polarizable potential models for water, J CHEM PHYS, 114(17), 2001, pp. 7544-7555
This paper discusses the computer simulation of the diffusion coefficients
and structure of infinitely dilute aqueous ionic solutions at ambient (298
K, solvent density 0.997 g cm(-3)) and supercritical (683 K, solvent densit
y 0.35 g cm(-3)) conditions using two different models for water. They are
the extended simple point charge (SPC/E) and renormalized polarizability (R
POL) models in which the electronic polarizations of the water molecule are
treated differently. The effect of polarizability is implicit in the SPC/E
model and explicit in the RPOL model. The RPOL model shows slightly greate
r hydrogen bonding, at room temperature than the SPC/E model, but less hydr
ogen bonding at 683 K. It is concluded that the explicit neglect of electro
nic polarization of the solvent and ions in calculations based on the SPC/E
model of water, has only a small effect on the diffusion coefficients of t
he ions. Both models predict diffusion coefficients of ions in supercritica
l water that are weakly dependent on their size in contrast to their behavi
or under ambient conditions discussed in previous work [S. Koneshan , J. Ph
ys. Chem. 102, 4193 (1998)]. The simulations suggest that the mechanism of
diffusion at the ambient and supercritical states of the solvent water is d
ifferent. (C) 2001 American Institute of Physics.