Electrophoresis of a charge inverted macroion complex: Molecular dynamics study
arXiv:cond-mat/0106561 · doi:10.1140/epje/i2001-10102-y
Abstract
We have performed molecular dynamics simulations to study the effect of an external electric field on a macroion in the solution of multivalent Z:1 salt. To obtain plausible hydrodynamics of the medium, we explicitly make the simulation of many neutral particles along with ions. In a weak electric field, the macroion drifts together with the strongly adsorbed multivalent counterions along the electric field, in the direction proving inversion of the charge sign. The reversed mobility of the macroion is insensitive to the external field, and increases with salt ionic strength. The reversed mobility takes a maximal value at intermediate counterion valence. The motion of the macroion complex does not induce any flow of the neutral solvent away from the macroion, which reveals screening of the hydrodynamic interactions at short distances in electrolyte solutions. A very large electric field, comparable to the macroion unscreened field, disrupts charge inversion by stripping the adsorbed counterions off the macroion.
8 pages, 7 figures
Cited by in corpus (10)
- Overcharging: The Crucial Role of Excluded Volume
- Incorporation of excluded volume correlations into Poisson-Boltzmann theory
- Overcharging, charge inversion and reentrant condensation: Using highly-charged polyelectrolytes in tetravalent salt solutions as an example of study
- Simulation of charge reversal in salty environments: Giant overcharging?
- Dielectrophoresis of nanocolloids: a molecular dynamics study
- Unfolding Collapsed Polyelectrolytes in Alternating-Current Electric Fields
- On the nature of overcharging and charge inversion in electrical double layers
- Stability of charge inversion, Thomson problem and application to electrophoresis
- Enhanced dielectrophoresis of nanocolloids by dimer formation
- Coarse-grained simulation of polymer translocation through an artificial nanopore