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Updated: Jun 23, 2026

Label-free Isolation and Enrichment of Cells Through Contactless Dielectrophoresis
Published on: September 3, 2013
Dielectrophoresis assisted concentration of micro-particles and their rapid quantitation based on optical means
Anil Ghubade1, Swarnasri Mandal, Rahul Chaudhury
1Department of Mechanical Engineering, Indian Institute of Technology, Kanpur, India.
Abstract:
The detection and counting of micro particles having sizes comparable to biological entities can provide a tremendous impetus to rapid diagnostics and clinical applications. MEMS technology has already been used in capture and detection of such micron size entities in miniscule concentrations. For this purpose a concentration step is normally added prior to the detection process. A variety of methodologies are used for quantization of such micron size particles/entities including change in permittivity, medium impedance, magnetic permeability and other means. Although optical studies have been extensively performed prior to this, it has not been used for quantization of the micro particles. We have designed, developed and characterized a MEMS counter which captures micron size fluorescent beads using delectrophoresis (DEP) and monitors their accumulation in a 12 μm x 230 μm size channel and monitors this accumulation as growth of overall fluorescence. The field is generated by a set of finely placed interdigitated microelectrodes. As we apply an alternating voltage at 10 V(pp) for a range of different frequencies we are able to capture the flowing beads and concentrate them by several orders of magnitude. This is also followed by their quantification in terms of growing fluorescence signal. For quantitating the fluorescence values a CCD (charge couple device) module fitted over an inverted fluorescence microscope is used that visualizes the whole capture process and a Labview based image acquisition software simultaneously calculates the signal intensity over these frames and arranges it temporally. Our work will have tremendous utility in developing a rapid bacterial counting procedure and will be a valuable tool in microbiological laboratories.
Insights
This study introduces a microelectromechanical systems (MEMS) counter for detecting and quantifying microparticles. The device uses dielectrophoresis (DEP) to concentrate fluorescent beads and measures their accumulation via fluorescence, enabling rapid particle counting for diagnostics.
Area of Science:
- Microfluidics and Nanotechnology
- Biomedical Engineering
- Optical Sensing
Background:
- Microparticle detection is crucial for rapid diagnostics and clinical applications.
- Microelectromechanical systems (MEMS) are utilized for capturing and detecting micron-sized entities.
- Existing methods often require a concentration step before particle detection and quantification.
Purpose of the Study:
- To design, develop, and characterize a MEMS-based counter for microparticles.
- To utilize dielectrophoresis (DEP) for capturing and concentrating fluorescent microparticles.
- To quantify microparticles by monitoring fluorescence signal growth.
Main Methods:
- A MEMS counter with interdigitated microelectrodes was designed and developed.
- Dielectrophoresis (DEP) was employed to capture and concentrate fluorescent beads in a microchannel.
- Alternating voltage (10 Vpp) at various frequencies was applied to facilitate bead capture and concentration.
- Fluorescence accumulation was monitored using a charge-coupled device (CCD) camera and Labview-based image acquisition software.
Main Results:
- The MEMS counter successfully captured and concentrated micron-sized fluorescent beads by several orders of magnitude.
- Accumulation of concentrated beads was quantified by measuring the increase in overall fluorescence signal.
- The system demonstrated the ability to monitor and quantify particle accumulation temporally.
Conclusions:
- The developed MEMS counter offers a novel approach for microparticle detection and quantification.
- This technology has significant potential for developing rapid bacterial counting procedures.
- The device serves as a valuable tool for microbiological laboratories and diagnostics.
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