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Electrophoresis: Overview01:20

Electrophoresis: Overview

Electrophoresis is a powerful analytical separation technique that relies on the differential migration of charged species when subjected to an electric field. The core strength of electrophoresis lies in its ability to separate high-molecular-weight species in complex mixtures. It has found widespread use in biochemistry, molecular biology, and analytical chemistry, allowing the separation of compounds like amino acids, nucleotides, carbohydrates, and proteins with excellent resolution.
There...
Capillary Electrophoresis: Applications01:30

Capillary Electrophoresis: Applications

Capillary electrophoretic separations offer various modes, each with unique applications. These modes include capillary zone electrophoresis, capillary gel electrophoresis, capillary array electrophoresis, capillary isoelectric focusing, capillary isotachophoresis, micellar electrokinetic chromatography, and capillary electrochromatography.
Capillary zone electrophoresis (CZE) separates ionic components based on their electrophoretic mobility. It has been used to separate proteins, amino acids,...
Two-dimensional Gel Electrophoresis01:22

Two-dimensional Gel Electrophoresis

Two-dimensional gel electrophoresis is a high-resolution protein separation method first introduced by O' Farrell and Klose in 1975. This method involves protein separation by two dimensions, mass and charge, making it more accurate than one-dimensional gel electrophoresis.
The first dimension separation uses the isoelectric focusing or IEF technique performed on immobilized pH gradient (IPG) strips that separate proteins according to their isoelectric points.
Biological samples, such as  cells...
Capillary Electrophoresis: Instrumentation01:20

Capillary Electrophoresis: Instrumentation

Capillary electrophoresis instrumentation typically consists of several key components. A high-voltage power supply generates the electric field necessary for the separation by connecting to an anode (the positively charged electrode) and a cathode (the negatively charged electrode) located in buffer reservoirs at each end of the capillary tube. The system includes a sample vial, a fused silica capillary tube coated with polyimide for mechanical strength through which the sample components...
SDS-PAGE01:27

SDS-PAGE

Gel electrophoresis is a method that separates biological macromolecules like nucleic acids or proteins by forcing them to pass through a gel matrix under an electric field.
A variation of gel electrophoresis, termed  polyacrylamide gel electrophoresis (PAGE), is commonly used for separating proteins according to their molecular size by passing them through a polyacrylamide gel. Because of the varying charges associated with amino acid side chains, PAGE can be used to separate intact proteins...
Dielectric Polarization in a Capacitor01:31

Dielectric Polarization in a Capacitor

The presence of a dielectric medium in a capacitor not only changes the voltage and capacitance but also affects the electric field. In general, dielectrics can be of two types: polar and nonpolar. In a polar dielectric, the positive and negative charges in the molecules are separated by a distance and hence have a permanent dipole moment. In contrast, no such charge separation exists in a nonpolar dielectric, however the nonpolar molecules get polarized in the presence of an external electric...

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Related Experiment Video

Updated: Jul 13, 2026

Label-free Isolation and Enrichment of Cells Through Contactless Dielectrophoresis
10:38

Label-free Isolation and Enrichment of Cells Through Contactless Dielectrophoresis

Published on: September 3, 2013

Multiple frequency dielectrophoresis.

Mario Urdaneta1, Elisabeth Smela

  • 1Department of Mechanical Engineering, University of Maryland, College Park, MD, USA.

Electrophoresis
|August 19, 2007
PubMed
Summary

A new multiple frequency dielectrophoresis (MFDEP) model uses an effective Clausius-Mossotti factor to control particles. This method enhances dielectrophoretic device performance for cell sorting and patterning.

Area of Science:

  • Biophysics
  • Electrical Engineering
  • Biotechnology

Background:

  • Dielectrophoresis (DEP) is a powerful technique for manipulating microparticles using non-uniform electric fields.
  • Traditional DEP methods often face limitations in achieving precise control and simultaneous manipulation of diverse particle populations.
  • Multiple frequency DEP (MFDEP) offers potential for enhanced control by introducing additional parameters.

Purpose of the Study:

  • To introduce a novel modeling approach for multiple frequency dielectrophoresis (MFDEP).
  • To demonstrate the enhanced control and applicability of MFDEP for particle manipulation.
  • To validate the MFDEP model experimentally for selective cell trapping and patterning.

Main Methods:

  • Developed a model based on an effective Clausius-Mossotti factor (CM(eff)) for particles in multi-frequency electric fields.

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Light-Induced Dielectrophoresis for Characterizing the Electrical Behavior of Human Mesenchymal Stem Cells
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Last Updated: Jul 13, 2026

Label-free Isolation and Enrichment of Cells Through Contactless Dielectrophoresis
10:38

Label-free Isolation and Enrichment of Cells Through Contactless Dielectrophoresis

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Separating Beads and Cells in Multi-channel Microfluidic Devices Using Dielectrophoresis and Laminar Flow
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Light-Induced Dielectrophoresis for Characterizing the Electrical Behavior of Human Mesenchymal Stem Cells
10:08

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  • Calculated CM(eff) values for live and dead yeast cells.
  • Designed and experimentally validated a three-electrode configuration utilizing MFDEP for selective cell manipulation.
  • Main Results:

    • The MFDEP model provides additional control parameters, with up to two per frequency.
    • Successfully predicted and experimentally demonstrated the selective trapping of live and dead yeast cells at different locations.
    • Achieved simultaneous trapping of both live and dead cells, showcasing MFDEP's precision.

    Conclusions:

    • MFDEP significantly enhances the performance of dielectrophoretic devices.
    • MFDEP enables precise separation of particles with similar dielectrophoretic properties.
    • MFDEP facilitates advanced applications like simultaneous trapping of multiple cell types and close-proximity cell patterning for consortia formation.