Modeling of Dielectrophoretic Particle Motion: Point Particle Versus Finite-Sized Particle

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Date

2017

Journal Title

Journal ISSN

Volume Title

Publisher

Wiley

Open Access Color

Green Open Access

Yes

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No
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Top 10%
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Top 10%
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Top 10%

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Abstract

Dielectrophoresis (DEP) is a very popular technique for microfluidic bio-particle manipulation. For the design of a DEP-based microfluidic device, simulation of the particle trajectory within the microchannel network is crucial. There are basically two approaches: (i) point-particle approach and (ii) finite-sized particle approach. In this study, many aspects of both approaches are discussed for the simulation of direct current DEP, alternating current DEP, and traveling-wave DEP applications. Point-particle approach is implemented using Lagrangian tracking method, and finite-sized particle is implemented using boundary element method. The comparison of the point-particle approach and finite-sized particle approach is presented for different DEP applications. Moreover, the effect of particle-particle interaction is explored by simulating the motion of closely packed multiple particles for the same applications, and anomalous-DEP, which is a result of particle-wall interaction at the close vicinity of electrode surface, is illustrated.

Description

Baranoglu, Besim/0000-0003-2005-050X; Cetin, Barbaros/0000-0001-9824-4000; Cetin, Barbaros/0000-0001-9824-4000

Keywords

Boundary element method, Dielectrophoresis, Lagrangian tracking method, Microfluidics, Electrophoresis, surface property, Surface Properties, Microfluidics, Dielectrophoresis, microfluidics, direct current, 530, Article, Motion, motion, computer simulation, Boundary element method, elementary particle, microchannel, traveling wave, Computer Simulation, procedures, Particle Size, Electrodes, comparative study, model, point particle, electrostimulation, electrode, particle size, Microfluidic Analytical Techniques, 620, Lagrangian tracking method, electrophoresis, hydrodynamics, finite sized particle, microfluidic analysis, alternating current

Fields of Science

02 engineering and technology, 01 natural sciences, 0104 chemical sciences, 0210 nano-technology

Citation

WoS Q

Q3

Scopus Q

Q2
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OpenCitations Citation Count
22

Source

ELECTROPHORESIS

Volume

38

Issue

11

Start Page

1407

End Page

1418

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Citations

CrossRef : 25

Scopus : 28

PubMed : 4

Captures

Mendeley Readers : 21

SCOPUS™ Citations

28

checked on Feb 10, 2026

Web of Science™ Citations

22

checked on Feb 10, 2026

Page Views

3

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