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Measurement of Particle Size Distribution in Turbid Solutions by Dynamic Light Scattering Microscopy
Published on: January 9, 2017
Vesicle size distributions measured by flow field-flow fractionation coupled with multiangle light scattering
B A Korgel1, J H van Zanten, H G Monbouquette
1Chemical Engineering Department, University of California Los Angeles, 90095-1592, USA.
Biophysical Journal
|June 23, 1998
Summary
Flow field-flow fractionation coupled with multiangle laser light scattering (flow FFF/MALLS) accurately measures vesicle size distributions. This method provides detailed size and concentration data without calibration or assumptions about vesicle shape.
Area of Science:
- Biophysical Chemistry
- Nanotechnology
- Materials Science
Background:
- Accurate characterization of vesicle size distribution is crucial for understanding their properties and applications.
- Existing methods for vesicle analysis often require calibration, refractive index detectors, or make assumptions about size distribution shape.
Purpose of the Study:
- To develop and validate an on-line vesicle characterization method using flow field-flow fractionation coupled with multiangle laser light scattering (flow FFF/MALLS).
- To enable simultaneous measurement of vesicle size and concentration without prior assumptions or calibration standards.
- To analyze the size distributions of vesicles produced by different formation methods.
Main Methods:
- Coupling of flow field-flow fractionation (flow FFF) with multiangle laser light scattering (MALLS) for continuous on-line analysis.
- Measurement of vesicle size and concentration as a function of elution time.
- Construction of number- and mass-weighted vesicle size distributions.
Main Results:
- The flow FFF/MALLS technique successfully determined vesicle size distributions without needing a refractive index detector or size standards.
- Vesicle size distributions were found to be non-Gaussian, fitting well to the Weibull distribution.
- Both extrusion and detergent dialysis methods produced nearly monodisperse vesicle populations (approx. 8% standard deviation) and flow FFF/MALLS resolved subpopulations with less than a twofold size difference.
Conclusions:
- Flow FFF/MALLS is a powerful, noninvasive technique for comprehensive vesicle characterization.
- The method provides accurate and detailed size distribution data, overcoming limitations of other techniques like dynamic light scattering.
- This approach facilitates a deeper understanding of vesicle formation processes and properties.

