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Acoustic Devices for Particle and Cell Manipulation and Sensing

An emerging demand for the precise manipulation of cells and particles for applications in cell biology and analytical chemistry has driven rapid development of ultrasonic manipulation technology. Compared to the other manipulation technologies, such as magnetic tweezing, dielectrophoresis and optic...

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Autores principales: Qiu, Yongqiang, Wang, Han, Demore, Christine E. M., Hughes, David A., Glynne-Jones, Peter, Gebhardt, Sylvia, Bolhovitins, Aleksandrs, Poltarjonoks, Romans, Weijer, Kees, Schönecker, Andreas, Hill, Martyn, Cochran, Sandy
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4179044/
https://www.ncbi.nlm.nih.gov/pubmed/25123465
http://dx.doi.org/10.3390/s140814806
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author Qiu, Yongqiang
Wang, Han
Demore, Christine E. M.
Hughes, David A.
Glynne-Jones, Peter
Gebhardt, Sylvia
Bolhovitins, Aleksandrs
Poltarjonoks, Romans
Weijer, Kees
Schönecker, Andreas
Hill, Martyn
Cochran, Sandy
author_facet Qiu, Yongqiang
Wang, Han
Demore, Christine E. M.
Hughes, David A.
Glynne-Jones, Peter
Gebhardt, Sylvia
Bolhovitins, Aleksandrs
Poltarjonoks, Romans
Weijer, Kees
Schönecker, Andreas
Hill, Martyn
Cochran, Sandy
author_sort Qiu, Yongqiang
collection PubMed
description An emerging demand for the precise manipulation of cells and particles for applications in cell biology and analytical chemistry has driven rapid development of ultrasonic manipulation technology. Compared to the other manipulation technologies, such as magnetic tweezing, dielectrophoresis and optical tweezing, ultrasonic manipulation has shown potential in a variety of applications, with its advantages of versatile, inexpensive and easy integration into microfluidic systems, maintenance of cell viability, and generation of sufficient forces to handle particles, cells and their agglomerates. This article briefly reviews current practice and reports our development of various ultrasonic standing wave manipulation devices, including simple devices integrated with high frequency (>20 MHz) ultrasonic transducers for the investigation of biological cells and complex ultrasonic transducer array systems to explore the feasibility of electronically controlled 2-D and 3-D manipulation. Piezoelectric and passive materials, fabrication techniques, characterization methods and possible applications are discussed. The behavior and performance of the devices have been investigated and predicted with computer simulations, and verified experimentally. Issues met during development are highlighted and discussed. To assist long term practical adoption, approaches to low-cost, wafer level batch-production and commercialization potential are also addressed.
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spelling pubmed-41790442014-10-02 Acoustic Devices for Particle and Cell Manipulation and Sensing Qiu, Yongqiang Wang, Han Demore, Christine E. M. Hughes, David A. Glynne-Jones, Peter Gebhardt, Sylvia Bolhovitins, Aleksandrs Poltarjonoks, Romans Weijer, Kees Schönecker, Andreas Hill, Martyn Cochran, Sandy Sensors (Basel) Article An emerging demand for the precise manipulation of cells and particles for applications in cell biology and analytical chemistry has driven rapid development of ultrasonic manipulation technology. Compared to the other manipulation technologies, such as magnetic tweezing, dielectrophoresis and optical tweezing, ultrasonic manipulation has shown potential in a variety of applications, with its advantages of versatile, inexpensive and easy integration into microfluidic systems, maintenance of cell viability, and generation of sufficient forces to handle particles, cells and their agglomerates. This article briefly reviews current practice and reports our development of various ultrasonic standing wave manipulation devices, including simple devices integrated with high frequency (>20 MHz) ultrasonic transducers for the investigation of biological cells and complex ultrasonic transducer array systems to explore the feasibility of electronically controlled 2-D and 3-D manipulation. Piezoelectric and passive materials, fabrication techniques, characterization methods and possible applications are discussed. The behavior and performance of the devices have been investigated and predicted with computer simulations, and verified experimentally. Issues met during development are highlighted and discussed. To assist long term practical adoption, approaches to low-cost, wafer level batch-production and commercialization potential are also addressed. MDPI 2014-08-13 /pmc/articles/PMC4179044/ /pubmed/25123465 http://dx.doi.org/10.3390/s140814806 Text en © 2014 by the authors; licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution license (http://creativecommons.org/licenses/by/3.0/).
spellingShingle Article
Qiu, Yongqiang
Wang, Han
Demore, Christine E. M.
Hughes, David A.
Glynne-Jones, Peter
Gebhardt, Sylvia
Bolhovitins, Aleksandrs
Poltarjonoks, Romans
Weijer, Kees
Schönecker, Andreas
Hill, Martyn
Cochran, Sandy
Acoustic Devices for Particle and Cell Manipulation and Sensing
title Acoustic Devices for Particle and Cell Manipulation and Sensing
title_full Acoustic Devices for Particle and Cell Manipulation and Sensing
title_fullStr Acoustic Devices for Particle and Cell Manipulation and Sensing
title_full_unstemmed Acoustic Devices for Particle and Cell Manipulation and Sensing
title_short Acoustic Devices for Particle and Cell Manipulation and Sensing
title_sort acoustic devices for particle and cell manipulation and sensing
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4179044/
https://www.ncbi.nlm.nih.gov/pubmed/25123465
http://dx.doi.org/10.3390/s140814806
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