Using solvent binding and dielectric friction to interpret the hydration behavior of complex anions
Richard P Matthews1, Gerhard A Venter, Kevin J Naidoo
1Department of Chemistry, University of Cape Town, Rondebosch, South Africa.
Abstract:
We investigate the hydration structure and water/ion dynamics about complex anions using a revised platinum group metal chloro-anion force field. Nanosecond atomistic molecular dynamics simulations were performed for the platinum group metal chloro-anion complexes. This investigation makes the first attempt at describing diffusion trends of polyatomic complex anions with counterions such as these using both hydrodynamic and dielectric friction properties of the anion solution. The transition metal anion complex diffusion rates are shown to be correlated to their first solvent shell radial distribution function peaks, their mean water residence times, and their solvation volumes as calculated by Voronoi tessellation of the simulation cell. The general trend is for slower diffusion rates to result from larger hydration shell volumes. This diffusion rate trend calculated from Stokes' law is best described using the solventberg approach with well-chosen effective solvated radii. However, to improve the diffusion constant estimates when they are compared with those calculated from computer simulations, the dielectric friction is required.
Related Concept Videos
Aqueous Solutions and Heats of Hydration
When ionic compounds dissolve in water, the ions in the solid separate and disperse uniformly throughout the solution because water molecules surround and solvate the ions, reducing the strong electrostatic forces between them. This process...
Intermolecular Forces
Theory of Strong Electrolytes
Solubility
A solution is a homogeneous mixture composed of a solvent, the major component, and a solute, the minor component. The physical state of a solution—solid, liquid, or gas—is typically the same as that of the solvent. Solute concentrations are often described with qualitative terms such as dilute (of relatively low concentration) and concentrated (of relatively high concentration).
In a solution, the solute particles (molecules, atoms, and/or ions)...
Intermolecular Forces in Solutions
When the strengths of the intermolecular forces of attraction between solute and solvent species in a solution are no different than those present in the separated components, the solution is formed with no accompanying energy change. Such a solution is called an ideal solution. A mixture of ideal gases (or gases such as helium and argon,...
Entropy and Solvation


