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Integration of a Dielectrophoretic Tapered Aluminum Microelectrode Array with a Flow Focusing Technique

We present the integration of a flow focusing microfluidic device in a dielectrophoretic application that based on a tapered aluminum microelectrode array (TAMA). The characterization and optimization method of microfluidic geometry performs the hydrodynamic flow focusing on the channel. The sample...

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Autores principales: Rashid, Naqib Fuad Abd, Deivasigamani, Revathy, Wee, M. F. Mohd Razip, Hamzah, Azrul Azlan, Buyong, Muhamad Ramdzan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8347692/
https://www.ncbi.nlm.nih.gov/pubmed/34372193
http://dx.doi.org/10.3390/s21154957
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author Rashid, Naqib Fuad Abd
Deivasigamani, Revathy
Wee, M. F. Mohd Razip
Hamzah, Azrul Azlan
Buyong, Muhamad Ramdzan
author_facet Rashid, Naqib Fuad Abd
Deivasigamani, Revathy
Wee, M. F. Mohd Razip
Hamzah, Azrul Azlan
Buyong, Muhamad Ramdzan
author_sort Rashid, Naqib Fuad Abd
collection PubMed
description We present the integration of a flow focusing microfluidic device in a dielectrophoretic application that based on a tapered aluminum microelectrode array (TAMA). The characterization and optimization method of microfluidic geometry performs the hydrodynamic flow focusing on the channel. The sample fluids are hydrodynamically focused into the region of interest (ROI) where the dielectrophoresis force (F(DEP)) is dominant. The device geometry is designed using 3D CAD software and fabricated using the micro-milling process combined with soft lithography using PDMS. The flow simulation is achieved using COMSOL Multiphysics 5.5 to study the effect of the flow rate ratio between the sample fluids (Q(1)) and the sheath fluids (Q(2)) toward the width of flow focusing. Five different flow rate ratios (Q(1)/Q(2)) are recorded in this experiment, which are 0.2, 0.4, 0.6, 0.8 and 1.0. The width of flow focusing is increased linearly with the flow rate ratio (Q(1)/Q(2)) for both the simulation and the experiment. At the highest flow rate ratio (Q(1)/Q(2) = 1), the width of flow focusing is obtained at 638.66 µm and at the lowest flow rate ratio (Q(1)/Q(2) = 0.2), the width of flow focusing is obtained at 226.03 µm. As a result, the flow focusing effect is able to reduce the dispersion of the particles in the microelectrode from 2000 µm to 226.03 µm toward the ROI. The significance of flow focusing on the separation of particles is studied using 10 and 1 µm polystyrene beads by applying a non-uniform electrical field to the TAMA at 10 V(PP), 150 kHz. Ultimately, we are able to manipulate the trajectories of two different types of particles in the channel. For further validation, the focusing of 3.2 µm polystyrene beads within the dominant F(DEP) results in an enhanced manipulation efficiency from 20% to 80% in the ROI.
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spelling pubmed-83476922021-08-08 Integration of a Dielectrophoretic Tapered Aluminum Microelectrode Array with a Flow Focusing Technique Rashid, Naqib Fuad Abd Deivasigamani, Revathy Wee, M. F. Mohd Razip Hamzah, Azrul Azlan Buyong, Muhamad Ramdzan Sensors (Basel) Article We present the integration of a flow focusing microfluidic device in a dielectrophoretic application that based on a tapered aluminum microelectrode array (TAMA). The characterization and optimization method of microfluidic geometry performs the hydrodynamic flow focusing on the channel. The sample fluids are hydrodynamically focused into the region of interest (ROI) where the dielectrophoresis force (F(DEP)) is dominant. The device geometry is designed using 3D CAD software and fabricated using the micro-milling process combined with soft lithography using PDMS. The flow simulation is achieved using COMSOL Multiphysics 5.5 to study the effect of the flow rate ratio between the sample fluids (Q(1)) and the sheath fluids (Q(2)) toward the width of flow focusing. Five different flow rate ratios (Q(1)/Q(2)) are recorded in this experiment, which are 0.2, 0.4, 0.6, 0.8 and 1.0. The width of flow focusing is increased linearly with the flow rate ratio (Q(1)/Q(2)) for both the simulation and the experiment. At the highest flow rate ratio (Q(1)/Q(2) = 1), the width of flow focusing is obtained at 638.66 µm and at the lowest flow rate ratio (Q(1)/Q(2) = 0.2), the width of flow focusing is obtained at 226.03 µm. As a result, the flow focusing effect is able to reduce the dispersion of the particles in the microelectrode from 2000 µm to 226.03 µm toward the ROI. The significance of flow focusing on the separation of particles is studied using 10 and 1 µm polystyrene beads by applying a non-uniform electrical field to the TAMA at 10 V(PP), 150 kHz. Ultimately, we are able to manipulate the trajectories of two different types of particles in the channel. For further validation, the focusing of 3.2 µm polystyrene beads within the dominant F(DEP) results in an enhanced manipulation efficiency from 20% to 80% in the ROI. MDPI 2021-07-21 /pmc/articles/PMC8347692/ /pubmed/34372193 http://dx.doi.org/10.3390/s21154957 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
Rashid, Naqib Fuad Abd
Deivasigamani, Revathy
Wee, M. F. Mohd Razip
Hamzah, Azrul Azlan
Buyong, Muhamad Ramdzan
Integration of a Dielectrophoretic Tapered Aluminum Microelectrode Array with a Flow Focusing Technique
title Integration of a Dielectrophoretic Tapered Aluminum Microelectrode Array with a Flow Focusing Technique
title_full Integration of a Dielectrophoretic Tapered Aluminum Microelectrode Array with a Flow Focusing Technique
title_fullStr Integration of a Dielectrophoretic Tapered Aluminum Microelectrode Array with a Flow Focusing Technique
title_full_unstemmed Integration of a Dielectrophoretic Tapered Aluminum Microelectrode Array with a Flow Focusing Technique
title_short Integration of a Dielectrophoretic Tapered Aluminum Microelectrode Array with a Flow Focusing Technique
title_sort integration of a dielectrophoretic tapered aluminum microelectrode array with a flow focusing technique
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8347692/
https://www.ncbi.nlm.nih.gov/pubmed/34372193
http://dx.doi.org/10.3390/s21154957
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