Rotational averaging-out gravitational sedimentation of colloidal dispersions and phenomena
arXiv:1111.4436 · doi:10.1039/C2SM07217C
Abstract
We report on the differences between colloidal systems left to evolve in the earth's gravitational field and the same systems for which a slow continuous rotation averaged out the effects of particle sedimentation on a distance scale small compared to the particle size. Several systems of micron-sized colloidal particles were studied: a hard sphere fluid, colloids interacting via long-range electrostatic repulsions above the freezing volume fraction, an oppositely charged colloidal system close to either gelation and/or crystallization, colloids with a competing short-range depletion attraction and a long-range electrostatic repulsion, colloidal dipolar chains, and colloidal gold platelets under conditions where they formed stacks. Important differences in the structure formation were observed between the experiments where the particles were allowed to sediment and those where sedimentation was averaged out. For instance, in the case of colloids interacting via long-range electrostatic repulsions, an unusual sequence of dilute-Fluid/dilute-Crystal/dense-Fluid/dense-Crystal phases was observed throughout the suspension under the effect of gravity, related to the volume fraction dependence of the colloidal interactions, whereas the system stayed homogeneously crystallized with rotation. For the oppositely charged colloids, a gel-like structure was found to collapse under the influence of gravity with a few crystalline layers grown on top of the sediment, whereas when the colloidal sedimentation was averaged out, the gel completely transformed into crystallites that were oriented randomly throughout the sample. Rotational averaging out gravitational sedimentation is an effective and cheap way to estimate the importance of gravity for colloidal self-assembly processes.
13 pages, 13 figures
References in corpus (7)
- Probing the equilibrium dynamics of colloidal hard spheres above the mode-coupling glass transition
- Non-equilibrium sedimentation of colloids on the particle scale
- Direct measurement of three-body interactions
- Statistics of Particle Trajectories at Short Time Intervals Reveal fN-Scale Colloidal Forces
- Dynamic light scattering measurements in the activated regime of dense colloidal hard spheres
- Out-of-equilibrium processes in suspensions of oppositely charged colloids: liquid-to-crystal nucleation and gel formation
- Measuring Colloidal Forces from Particle Position Deviations inside an Optical Trap
Cited by in corpus (7)
- Origin of similarity of phase diagrams in amphiphilic and colloidal systems with competing interactions
- Real Space Analysis of Colloidal Gels: Triumphs, Challenges and Future Directions
- Two-dimensional colloidal fluids exhibiting pattern formation
- Periodic ordering of clusters in a one-dimensional lattice model
- Self-consistent theory for inhomogeneous systems with mesoscopic fluctuations
- Spatial inhomogeneities in ionic liquids, charged proteins and charge stabilized colloids from collective variables theory
- Underscreening and hidden ion structures in large scale simulations of concentrated electrolytes