Many-body interactions and melting of colloidal crystals
arXiv:0801.3916 · doi:10.1063/1.1595642
Abstract
We study the melting behavior of charged colloidal crystals, using a simulation technique that combines a continuous mean-field Poisson-Boltzmann description for the microscopic electrolyte ions with a Brownian-dynamics simulation for the mesoscopic colloids. This technique ensures that many-body interactions between the colloids are fully taken into account, and thus allows us to investigate how many-body interactions affect the solid-liquid phase behavior of charged colloids. Using the Lindemann criterion, we determine the melting line in a phase-diagram spanned by the colloidal charge and the salt concentration. We compare our results to predictions based on the established description of colloidal suspensions in terms of pairwise additive Yukawa potentials, and find good agreement at high-salt, but not at low-salt concentration. Analyzing the effective pair-interaction between two colloids in a crystalline environment, we demonstrate that the difference in the melting behavior observed at low salt is due to many-body interactions.
Cited by in corpus (10)
- Direct measurement of three-body interactions
- Many-Body Electrostatic Forces Between Colloidal Particles at Vanishing Ionic Strength
- Three-body interactions in colloidal systems
- Testing the relevance of effective interaction potentials between highly charged colloids in suspension
- The renormalized jellium model for spherical and cylindrical colloids
- A self-consistent renormalized Jellium approach for calculating structural and thermodynamic properties of charge stabilized colloidal suspensions
- Nonlinear screening and gas-liquid separation in suspensions of charged colloids
- Coexistence of hexatic and isotropic phases in two-dimensional Yukawa systems
- Efficient simulations of charged colloidal dispersions: A density functional approach
- Effective triplet interactions in nematic colloids