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Micron-sized particle separation with standing surface acoustic wave—Experimental and numerical approaches

Traditional cell/particle isolation methods are time-consuming and expensive and can lead to morphology disruptions due to high induced shear stress. To address these problems, novel lab-on-a-chip-based purification methods have been employed. Among various methods introduced for the separation and...

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Autores principales: Taatizadeh, Erfan, Dalili, Arash, Rellstab‑Sánchez, Pamela Inés, Tahmooressi, Hamed, Ravishankara, Adithya, Tasnim, Nishat, Najjaran, Homayoun, Li, Isaac T.S., Hoorfar, Mina
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8267599/
https://www.ncbi.nlm.nih.gov/pubmed/34242866
http://dx.doi.org/10.1016/j.ultsonch.2021.105651
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author Taatizadeh, Erfan
Dalili, Arash
Rellstab‑Sánchez, Pamela Inés
Tahmooressi, Hamed
Ravishankara, Adithya
Tasnim, Nishat
Najjaran, Homayoun
Li, Isaac T.S.
Hoorfar, Mina
author_facet Taatizadeh, Erfan
Dalili, Arash
Rellstab‑Sánchez, Pamela Inés
Tahmooressi, Hamed
Ravishankara, Adithya
Tasnim, Nishat
Najjaran, Homayoun
Li, Isaac T.S.
Hoorfar, Mina
author_sort Taatizadeh, Erfan
collection PubMed
description Traditional cell/particle isolation methods are time-consuming and expensive and can lead to morphology disruptions due to high induced shear stress. To address these problems, novel lab-on-a-chip-based purification methods have been employed. Among various methods introduced for the separation and purification of cells and synthetics particles, acoustofluidics has been one of the most effective methods. Unlike traditional separation techniques carried out in clinical laboratories based on chemical properties, the acoustofluidic process relies on the physical properties of the sample. Using acoustofluidics, manipulating cells and particles can be achieved in a label-free, contact-free, and highly biocompatible manner. To optimize the functionality of the platform, the numerical study should be taken into account before conducting experimental tests to save time and reduce fabrication expenses. Most current numerical studies have only considered one-dimensional harmonic standing waves to simulate the acoustic pressure distribution. However, one-dimensional simulations cannot calculate the actual acoustic pressure distribution inside the microchannel due to its limitation in considering longitudinal waves. To address this limitation, a two-dimensional numerical simulation was conducted in this study. Our numerical simulation investigates the effects of the platform geometrical and operational conditions on the separation efficiency. Next, the optimal values are tested in an experimental setting to validate these optimal parameters and conditions. This work provides a guideline for future acoustofluidic chip designs with a high degree of reproducibility and efficiency.
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spelling pubmed-82675992021-07-16 Micron-sized particle separation with standing surface acoustic wave—Experimental and numerical approaches Taatizadeh, Erfan Dalili, Arash Rellstab‑Sánchez, Pamela Inés Tahmooressi, Hamed Ravishankara, Adithya Tasnim, Nishat Najjaran, Homayoun Li, Isaac T.S. Hoorfar, Mina Ultrason Sonochem Original Research Article Traditional cell/particle isolation methods are time-consuming and expensive and can lead to morphology disruptions due to high induced shear stress. To address these problems, novel lab-on-a-chip-based purification methods have been employed. Among various methods introduced for the separation and purification of cells and synthetics particles, acoustofluidics has been one of the most effective methods. Unlike traditional separation techniques carried out in clinical laboratories based on chemical properties, the acoustofluidic process relies on the physical properties of the sample. Using acoustofluidics, manipulating cells and particles can be achieved in a label-free, contact-free, and highly biocompatible manner. To optimize the functionality of the platform, the numerical study should be taken into account before conducting experimental tests to save time and reduce fabrication expenses. Most current numerical studies have only considered one-dimensional harmonic standing waves to simulate the acoustic pressure distribution. However, one-dimensional simulations cannot calculate the actual acoustic pressure distribution inside the microchannel due to its limitation in considering longitudinal waves. To address this limitation, a two-dimensional numerical simulation was conducted in this study. Our numerical simulation investigates the effects of the platform geometrical and operational conditions on the separation efficiency. Next, the optimal values are tested in an experimental setting to validate these optimal parameters and conditions. This work provides a guideline for future acoustofluidic chip designs with a high degree of reproducibility and efficiency. Elsevier 2021-06-22 /pmc/articles/PMC8267599/ /pubmed/34242866 http://dx.doi.org/10.1016/j.ultsonch.2021.105651 Text en © 2021 The Authors https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Original Research Article
Taatizadeh, Erfan
Dalili, Arash
Rellstab‑Sánchez, Pamela Inés
Tahmooressi, Hamed
Ravishankara, Adithya
Tasnim, Nishat
Najjaran, Homayoun
Li, Isaac T.S.
Hoorfar, Mina
Micron-sized particle separation with standing surface acoustic wave—Experimental and numerical approaches
title Micron-sized particle separation with standing surface acoustic wave—Experimental and numerical approaches
title_full Micron-sized particle separation with standing surface acoustic wave—Experimental and numerical approaches
title_fullStr Micron-sized particle separation with standing surface acoustic wave—Experimental and numerical approaches
title_full_unstemmed Micron-sized particle separation with standing surface acoustic wave—Experimental and numerical approaches
title_short Micron-sized particle separation with standing surface acoustic wave—Experimental and numerical approaches
title_sort micron-sized particle separation with standing surface acoustic wave—experimental and numerical approaches
topic Original Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8267599/
https://www.ncbi.nlm.nih.gov/pubmed/34242866
http://dx.doi.org/10.1016/j.ultsonch.2021.105651
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