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  4. Dielectric spectroscopy in a micromachined flow cytometer: theoretical and practical considerations
 
research article

Dielectric spectroscopy in a micromachined flow cytometer: theoretical and practical considerations

Gawad, Shady
•
Cheung, Karen  
•
Seger, Urban  
Show more
2004
Lab on a Chip

We propose a model to determine the influence of different cell properties, such as size, membrane capacitance and cytoplasm conductivity, on the impedance spectrum as measured in a microfabricated cytometer. A dielectric sphere of equivalent complex permittivity is used as a simplified model to describe a biological cell. The measurement takes place between a pair of facing microelectrodes in a microchannel filled with a saline solution. The model incorporates various cell parameters, such as dielectric properties, size and position in the channel. A 3D finite element model is used to evaluate the magnitude of the electric field in the channel and the resultant changes in charge densities at the measurement electrode boundaries as a cell flows past. The charge density is integrated on the electrode surface to determine the displacement current and the channel impedance for the computed frequency range. The complete impedance model combines the finite element model, the electrode-electrolyte interface impedance and stray impedance, which are measured from a real device. The modeled dielectric complex spectra for various cell parameters are discussed and a measurement strategy for cell discrimination with such a system is proposed. We finally discuss the amount of noise and measurement fluctuations of the sensor.

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Type
research article
DOI
10.1039/b313761a
Web of Science ID

WOS:000221708800018

Author(s)
Gawad, Shady
Cheung, Karen  
Seger, Urban  
Bertsch, Arnaud  
Renaud, Philippe  
Date Issued

2004

Published in
Lab on a Chip
Volume

4

Issue

3

Start page

241

End page

251

Subjects

capacitive biomass measurements

•

single-shell model

•

electrodepolarization

•

biological cells

•

impedance

•

membrane

•

erythrocytes

•

particles

•

blood

•

conductivity

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
LMIS4  
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/216199
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