Bacterial handling under the influence of non-uniform electric fields: dielectrophoretic and electrohydrodynamic effects

This paper describes the modeling and experimental verification of a castellated microelectrode array intended tohandle biocells, based on common dielectrophoresis. The proposed microsystem was developed employing platinumelectrodes deposited by lift-off, silicon micromachining, and photoresin patterning techniques. Having fabricated the microdevice it was tested employing Escherichia coli as bioparticle model. Positive dielectrophoresis could be verified with the selected cells for frequencies above 100 kHz, and electrohydrodynamic effects were observed as the dominant phenomena when working at lower frequencies. As a result, negative dielectrophoresis could not be observed because its occurrence overlaps with electrohydrodynamic effects; i.e. the viscous drag force acting on the particles is greater than the dielectrophoretic force at frequencies where negative dielectrophoresis should occur. The experiments illustrate the convenience of this kind of microdevices to micro handling biological objects, opening the possibility for using these microarrays with other bioparticles. Additionally, liquid motion as a result of electrohydrodynamic effects must be taken into account when designing bioparticle micromanipulators, and could be used as mechanism to clean the electrode surfaces, that is one of the most important problems related to this kind of devices.

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Main Authors: Fernádez-Morales,Flavio H., Duarte,Julio E., Samitier-Martí,Josep
Format: Digital revista
Language:English
Published: Academia Brasileira de Ciências 2008
Online Access:http://old.scielo.br/scielo.php?script=sci_arttext&pid=S0001-37652008000400004
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spelling oai:scielo:S0001-376520080004000042008-11-19Bacterial handling under the influence of non-uniform electric fields: dielectrophoretic and electrohydrodynamic effectsFernádez-Morales,Flavio H.Duarte,Julio E.Samitier-Martí,Josep dielectrophoresis electrohydrodynamic effects biochips bacterial handling This paper describes the modeling and experimental verification of a castellated microelectrode array intended tohandle biocells, based on common dielectrophoresis. The proposed microsystem was developed employing platinumelectrodes deposited by lift-off, silicon micromachining, and photoresin patterning techniques. Having fabricated the microdevice it was tested employing Escherichia coli as bioparticle model. Positive dielectrophoresis could be verified with the selected cells for frequencies above 100 kHz, and electrohydrodynamic effects were observed as the dominant phenomena when working at lower frequencies. As a result, negative dielectrophoresis could not be observed because its occurrence overlaps with electrohydrodynamic effects; i.e. the viscous drag force acting on the particles is greater than the dielectrophoretic force at frequencies where negative dielectrophoresis should occur. The experiments illustrate the convenience of this kind of microdevices to micro handling biological objects, opening the possibility for using these microarrays with other bioparticles. Additionally, liquid motion as a result of electrohydrodynamic effects must be taken into account when designing bioparticle micromanipulators, and could be used as mechanism to clean the electrode surfaces, that is one of the most important problems related to this kind of devices.info:eu-repo/semantics/openAccessAcademia Brasileira de CiênciasAnais da Academia Brasileira de Ciências v.80 n.4 20082008-12-01info:eu-repo/semantics/articletext/htmlhttp://old.scielo.br/scielo.php?script=sci_arttext&pid=S0001-37652008000400004en10.1590/S0001-37652008000400004
institution SCIELO
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country Brasil
countrycode BR
component Revista
access En linea
databasecode rev-scielo-br
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region America del Sur
libraryname SciELO
language English
format Digital
author Fernádez-Morales,Flavio H.
Duarte,Julio E.
Samitier-Martí,Josep
spellingShingle Fernádez-Morales,Flavio H.
Duarte,Julio E.
Samitier-Martí,Josep
Bacterial handling under the influence of non-uniform electric fields: dielectrophoretic and electrohydrodynamic effects
author_facet Fernádez-Morales,Flavio H.
Duarte,Julio E.
Samitier-Martí,Josep
author_sort Fernádez-Morales,Flavio H.
title Bacterial handling under the influence of non-uniform electric fields: dielectrophoretic and electrohydrodynamic effects
title_short Bacterial handling under the influence of non-uniform electric fields: dielectrophoretic and electrohydrodynamic effects
title_full Bacterial handling under the influence of non-uniform electric fields: dielectrophoretic and electrohydrodynamic effects
title_fullStr Bacterial handling under the influence of non-uniform electric fields: dielectrophoretic and electrohydrodynamic effects
title_full_unstemmed Bacterial handling under the influence of non-uniform electric fields: dielectrophoretic and electrohydrodynamic effects
title_sort bacterial handling under the influence of non-uniform electric fields: dielectrophoretic and electrohydrodynamic effects
description This paper describes the modeling and experimental verification of a castellated microelectrode array intended tohandle biocells, based on common dielectrophoresis. The proposed microsystem was developed employing platinumelectrodes deposited by lift-off, silicon micromachining, and photoresin patterning techniques. Having fabricated the microdevice it was tested employing Escherichia coli as bioparticle model. Positive dielectrophoresis could be verified with the selected cells for frequencies above 100 kHz, and electrohydrodynamic effects were observed as the dominant phenomena when working at lower frequencies. As a result, negative dielectrophoresis could not be observed because its occurrence overlaps with electrohydrodynamic effects; i.e. the viscous drag force acting on the particles is greater than the dielectrophoretic force at frequencies where negative dielectrophoresis should occur. The experiments illustrate the convenience of this kind of microdevices to micro handling biological objects, opening the possibility for using these microarrays with other bioparticles. Additionally, liquid motion as a result of electrohydrodynamic effects must be taken into account when designing bioparticle micromanipulators, and could be used as mechanism to clean the electrode surfaces, that is one of the most important problems related to this kind of devices.
publisher Academia Brasileira de Ciências
publishDate 2008
url http://old.scielo.br/scielo.php?script=sci_arttext&pid=S0001-37652008000400004
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