Measuring every particle's size from three-dimensional imaging experiments
arXiv:1112.1460 · doi:10.1038/ncomms2114
Abstract
Often experimentalists study colloidal suspensions that are nominally monodisperse. In reality these samples have a polydispersity of 4-10%. At the level of an individual particle, the consequences of this polydispersity are unknown as it is difficult to measure an individual particle size from microscopy. We propose a general method to estimate individual particle radii within a moderately concentrated colloidal suspension observed with confocal microscopy. We confirm the validity of our method by numerical simulations of four major systems: random close packing, colloidal gels, nominally monodisperse dense samples, and nominally binary dense samples. We then apply our method to experimental data, and demonstrate the utility of this method with results from four case studies. In the first, we demonstrate that we can recover the full particle size distribution {\it in situ}. In the second, we show that accounting for particle size leads to more accurate structural information in a random close packed sample. In the third, we show that crystal nucleation occurs in locally monodisperse regions. In the fourth, we show that particle mobility in a dense sample is correlated to the local volume fraction.
7 pages, 5 figures
References in corpus (8)
- Characterizing and tracking single colloidal particles with video holographic microscopy
- On measuring colloidal volume fractions
- Structure and dynamics of colloidal depletion gels: coincidence of transitions and heterogeneity
- Confocal microscopy of colloidal particles: towards reliable, optimum coordinates
- Suppressed compressibility at large scale in jammed packings of size disperse spheres
- Incompressibility of polydisperse random close packed colloidal particles
- The equilibrium intrinsic crystal-liquid interface of colloids
- Implications of the effective one-component analysis of pair correlations in colloidal fluids with polydispersity
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- Real Space Analysis of Colloidal Gels: Triumphs, Challenges and Future Directions
- Determination of the positions and orientations of concentrated rod-like colloids from 3D microscopy data
- Eliminating Stripe Artifacts in Light-Sheet Fluorescence Imaging
- Versatile high-speed confocal microscopy using a single laser beam
- Freezing line of polydisperse hard spheres via direct-coexistence simulations
- Neglecting polydispersity degrades propensity measurements in supercooled liquids