Experimental study of random close packed colloidal particles
arXiv:1003.3965 · doi:10.1103/PhysRevE.82.011403
Abstract
A collection of spherical particles can be packed tightly together into an amorphous packing known as "random close packing" (RCP). This structure is of interest as a model for the arrangement of molecules in simple liquids and glasses, as well as the arrangement of particles in sand piles. We use confocal microscopy to study the arrangement of colloidal particles in an experimentally realized RCP state. We image a large volume containing more than 450,000 particles with a resolution of each particle position to better than 0.02 particle diameters. While the arrangement of the particles satisfies multiple criteria for being random, we also observe a small fraction (less than 3%) of tiny crystallites (4 particles or fewer). These regions pack slightly better and are thus associated with locally higher densities. The structure factor of our sample at long length scales is non-zero, , suggesting that there are long wavelength density fluctuations in our sample, perhaps due to the tiny crystallites. Our results suggest that experimentally realizable RCP systems may be different from simulated RCP systems, in particular, with the presence of these long wavelength density fluctuations.
9 pages, 6 figures
References in corpus (10)
- Jamming at Zero Temperature and Zero Applied Stress: the Epitome of Disorder
- Close packing density of polydisperse hard spheres
- Jamming transitions in amorphous packings of frictionless spheres occur over a continuous range of volume fractions
- Hard Spheres: Crystallization and Glass Formation
- Non-equilibrium sedimentation of colloids on the particle scale
- Random close packing of polydisperse hard spheres
- Fractionation effects in phase equilibria of polydisperse hard sphere colloids
- An invariant distribution in static granular media
- Geometrical Frustration: A Study of 4d Hard Spheres
- Random close packing of granular matter
Cited by in corpus (26)
- The Physics of the Colloidal Glass Transition
- Shortcomings of the Bond Orientational Order Parameters for the Analysis of Disordered Particulate Matter
- Avian photoreceptor patterns represent a disordered hyperuniform solution to a multiscale packing problem
- On measuring colloidal volume fractions
- Emergent hyperuniformity in periodically-driven emulsions
- Diagnosing hyperuniformity in two-dimensional disordered jammed-packings of soft spheres
- Suppressed compressibility at large scale in jammed packings of size disperse spheres
- Incompressibility of polydisperse random close packed colloidal particles
- Structural properties of dense hard sphere packings
- Hyperuniformity, quasi-long-range correlations, and void-space constraints in maximally random jammed particle packings. I. Polydisperse spheres
- Exploring the jamming transition over a wide range of critical densities
- Two diverging length scales in the structure of jammed packings
- Thermal fluctuations, mechanical response, and hyperuniformity in jammed solids
- Hyperuniformity, quasi-long-range correlations, and void-space constraints in maximally random jammed particle packings. II. Anisotropy in particle shape
- Characterization of maximally random jammed sphere packings: Voronoi correlation functions
- Search for Hyperuniformity in Mechanically Stable Packings of Frictionless Disks Above Jamming
- Large-scale structure of randomly jammed particles
- Phonon Dispersion and Elastic Moduli of Two-Dimensional Disordered Colloidal Packings of Soft Particles with Frictional Interactions
- Particle-scale structure in frozen colloidal suspensions from small angle x-ray scattering
- Observation and Characterization of the Vestige of the Jamming Transition in a Thermal 3D System
- Characterizing Pixel and Point Patterns with a Hyperuniformity Disorder Length
- Cuddling Ellipsoids: Densest local structures of uniaxial ellipsoids
- Consequences of minimizing pair correlations in fluids for dynamics, thermodynamics, and structure
- Mixing properties of bi-disperse ellipsoid assemblies: Mean-field behaviour in a granular matter experiment
- On the design of random metasurface devices
- Dense Random Packing of Disks With a Power-Law Size Distribution in Thermodynamic Limit: Fractal-like Properties