Cargando…

Individual Microparticle Manipulation Using Combined Electroosmosis and Dielectrophoresis through a Si(3)N(4) Film with a Single Micropore

Porous dielectric membranes that perform insulator-based dielectrophoresis or electroosmotic pumping are commonly used in microchip technologies. However, there are few fundamental studies on the electrokinetic flow patterns of single microparticles around a single micropore in a thin dielectric fil...

Descripción completa

Detalles Bibliográficos
Autores principales: Lyu, Chenang, Lou, Leo, Powell-Palm, Matthew J., Ukpai, Gideon, Li, Xing, Rubinsky, Boris
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8708253/
https://www.ncbi.nlm.nih.gov/pubmed/34945428
http://dx.doi.org/10.3390/mi12121578
_version_ 1784622637954105344
author Lyu, Chenang
Lou, Leo
Powell-Palm, Matthew J.
Ukpai, Gideon
Li, Xing
Rubinsky, Boris
author_facet Lyu, Chenang
Lou, Leo
Powell-Palm, Matthew J.
Ukpai, Gideon
Li, Xing
Rubinsky, Boris
author_sort Lyu, Chenang
collection PubMed
description Porous dielectric membranes that perform insulator-based dielectrophoresis or electroosmotic pumping are commonly used in microchip technologies. However, there are few fundamental studies on the electrokinetic flow patterns of single microparticles around a single micropore in a thin dielectric film. Such a study would provide fundamental insights into the electrokinetic phenomena around a micropore, with practical applications regarding the manipulation of single cells and microparticles by focused electric fields. We have fabricated a device around a silicon nitride film with a single micropore (2–4 µm in diameter) which has the ability to locally focus electric fields on the micropore. Single microscale polystyrene beads were used to study the electrokinetic flow patterns. A mathematical model was developed to support the experimental study and evaluate the electric field distribution, fluid motion, and bead trajectories. Good agreement was found between the mathematic model and the experimental data. We show that the combination of electroosmotic flow and dielectrophoretic force induced by direct current through a single micropore can be used to trap, agglomerate, and repel microparticles around a single micropore without an external pump. The scale of our system is practically relevant for the manipulation of single mammalian cells, and we anticipate that our single-micropore approach will be directly employable in applications ranging from fundamental single cell analyses to high-precision single cell electroporation or cell fusion.
format Online
Article
Text
id pubmed-8708253
institution National Center for Biotechnology Information
language English
publishDate 2021
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-87082532021-12-25 Individual Microparticle Manipulation Using Combined Electroosmosis and Dielectrophoresis through a Si(3)N(4) Film with a Single Micropore Lyu, Chenang Lou, Leo Powell-Palm, Matthew J. Ukpai, Gideon Li, Xing Rubinsky, Boris Micromachines (Basel) Article Porous dielectric membranes that perform insulator-based dielectrophoresis or electroosmotic pumping are commonly used in microchip technologies. However, there are few fundamental studies on the electrokinetic flow patterns of single microparticles around a single micropore in a thin dielectric film. Such a study would provide fundamental insights into the electrokinetic phenomena around a micropore, with practical applications regarding the manipulation of single cells and microparticles by focused electric fields. We have fabricated a device around a silicon nitride film with a single micropore (2–4 µm in diameter) which has the ability to locally focus electric fields on the micropore. Single microscale polystyrene beads were used to study the electrokinetic flow patterns. A mathematical model was developed to support the experimental study and evaluate the electric field distribution, fluid motion, and bead trajectories. Good agreement was found between the mathematic model and the experimental data. We show that the combination of electroosmotic flow and dielectrophoretic force induced by direct current through a single micropore can be used to trap, agglomerate, and repel microparticles around a single micropore without an external pump. The scale of our system is practically relevant for the manipulation of single mammalian cells, and we anticipate that our single-micropore approach will be directly employable in applications ranging from fundamental single cell analyses to high-precision single cell electroporation or cell fusion. MDPI 2021-12-18 /pmc/articles/PMC8708253/ /pubmed/34945428 http://dx.doi.org/10.3390/mi12121578 Text en © 2021 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Lyu, Chenang
Lou, Leo
Powell-Palm, Matthew J.
Ukpai, Gideon
Li, Xing
Rubinsky, Boris
Individual Microparticle Manipulation Using Combined Electroosmosis and Dielectrophoresis through a Si(3)N(4) Film with a Single Micropore
title Individual Microparticle Manipulation Using Combined Electroosmosis and Dielectrophoresis through a Si(3)N(4) Film with a Single Micropore
title_full Individual Microparticle Manipulation Using Combined Electroosmosis and Dielectrophoresis through a Si(3)N(4) Film with a Single Micropore
title_fullStr Individual Microparticle Manipulation Using Combined Electroosmosis and Dielectrophoresis through a Si(3)N(4) Film with a Single Micropore
title_full_unstemmed Individual Microparticle Manipulation Using Combined Electroosmosis and Dielectrophoresis through a Si(3)N(4) Film with a Single Micropore
title_short Individual Microparticle Manipulation Using Combined Electroosmosis and Dielectrophoresis through a Si(3)N(4) Film with a Single Micropore
title_sort individual microparticle manipulation using combined electroosmosis and dielectrophoresis through a si(3)n(4) film with a single micropore
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8708253/
https://www.ncbi.nlm.nih.gov/pubmed/34945428
http://dx.doi.org/10.3390/mi12121578
work_keys_str_mv AT lyuchenang individualmicroparticlemanipulationusingcombinedelectroosmosisanddielectrophoresisthroughasi3n4filmwithasinglemicropore
AT louleo individualmicroparticlemanipulationusingcombinedelectroosmosisanddielectrophoresisthroughasi3n4filmwithasinglemicropore
AT powellpalmmatthewj individualmicroparticlemanipulationusingcombinedelectroosmosisanddielectrophoresisthroughasi3n4filmwithasinglemicropore
AT ukpaigideon individualmicroparticlemanipulationusingcombinedelectroosmosisanddielectrophoresisthroughasi3n4filmwithasinglemicropore
AT lixing individualmicroparticlemanipulationusingcombinedelectroosmosisanddielectrophoresisthroughasi3n4filmwithasinglemicropore
AT rubinskyboris individualmicroparticlemanipulationusingcombinedelectroosmosisanddielectrophoresisthroughasi3n4filmwithasinglemicropore