Charge regulation of nonpolar colloids
arXiv:1709.03161 · doi:10.1039/C7SM01825H
Abstract
Individual colloids often carry a charge as a result of the dissociation (or adsorption) of weakly-ionized surface groups. The magnitude depends on the precise chemical environment surrounding a particle, which in a concentrated dispersion is a function of the colloid packing fraction . Theoretical studies have suggested that the effective charge in regulated systems could, in general, decrease with increasing . We test this hypothesis for nonpolar dispersions by determining over a wide range of packing fractions () using a combination of small-angle X-ray scattering and electrophoretic mobility measurements. We find a complex dependence of the particle charge as a function of the packing fraction, with initially decreasing at low concentrations before finally increasing at high . We attribute the non-monotonic density dependence to a crossover from concentration-independent screening at low , to a high packing fraction regime in which counterions outnumber salt ions and electrostatic screening becomes -dependent. The efficiency of charge stabilization at high concentrations may explain the unusually high stability of concentrated nanoparticle dispersions which has been reported.
14 pages, 10 figures - published version