Literature DB >> 19709711

Mode-switching: a new technique for electronically varying the agglomeration position in an acoustic particle manipulator.

Peter Glynne-Jones1, Rosemary J Boltryk, Nicholas R Harris, Andy W J Cranny, Martyn Hill.   

Abstract

Acoustic radiation forces offer a means of manipulating particles within a fluid. Much interest in recent years has focussed on the use of radiation forces in microfluidic (or "lab on a chip") devices. Such devices are well matched to the use of ultrasonic standing waves in which the resonant dimensions of the chamber are smaller than the ultrasonic wavelength in use. However, such devices have typically been limited to moving particles to one or two predetermined planes, whose positions are determined by acoustic pressure nodes/anti-nodes set up in the ultrasonic standing wave. In most cases devices have been designed to move particles to either the centre or (more recently) the side of a flow channel using ultrasonic frequencies that produce a half or quarter wavelength over the channel, respectively. It is demonstrated here that by rapidly switching back and forth between half and quarter wavelength frequencies - mode-switching - a new agglomeration position is established that permits beads to be brought to any arbitrary point between the half and quarter-wave nodes. This new agglomeration position is effectively a position of stable equilibrium. This has many potential applications, particularly in cell sorting and manipulation. It should also enable precise control of agglomeration position to be maintained regardless of manufacturing tolerances, temperature variations, fluid medium characteristics and particle concentration.

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Year:  2009        PMID: 19709711     DOI: 10.1016/j.ultras.2009.07.010

Source DB:  PubMed          Journal:  Ultrasonics        ISSN: 0041-624X            Impact factor:   2.890


  11 in total

1.  Transportation of single cell and microbubbles by phase-shift introduced to standing leaky surface acoustic waves.

Authors:  Long Meng; Feiyan Cai; Zidong Zhang; Lili Niu; Qiaofeng Jin; Fei Yan; Junru Wu; Zhanhui Wang; Hairong Zheng
Journal:  Biomicrofluidics       Date:  2011-10-20       Impact factor: 2.800

2.  Tunable patterning of microparticles and cells using standing surface acoustic waves.

Authors:  Xiaoyun Ding; Jinjie Shi; Sz-Chin Steven Lin; Shahrzad Yazdi; Brian Kiraly; Tony Jun Huang
Journal:  Lab Chip       Date:  2012-05-31       Impact factor: 6.799

3.  Particle separation by phase modulated surface acoustic waves.

Authors:  Gergely Simon; Marco A B Andrade; Julien Reboud; Jose Marques-Hueso; Marc P Y Desmulliez; Jonathan M Cooper; Mathis O Riehle; Anne L Bernassau
Journal:  Biomicrofluidics       Date:  2017-10-26       Impact factor: 2.800

4.  Spatial tuning of acoustofluidic pressure nodes by altering net sonic velocity enables high-throughput, efficient cell sorting.

Authors:  Seung-Yong Jung; Timothy Notton; Erika Fong; Maxim Shusteff; Leor S Weinberger
Journal:  Lab Chip       Date:  2015-02-21       Impact factor: 6.799

5.  Harmonic acoustics for dynamic and selective particle manipulation.

Authors:  Shujie Yang; Zhenhua Tian; Zeyu Wang; Joseph Rufo; Peng Li; John Mai; Jianping Xia; Hunter Bachman; Po-Hsun Huang; Mengxi Wu; Chuyi Chen; Luke P Lee; Tony Jun Huang
Journal:  Nat Mater       Date:  2022-03-24       Impact factor: 47.656

6.  Acoustic devices for particle and cell manipulation and sensing.

Authors:  Yongqiang Qiu; Han Wang; Christine E M Demore; David A Hughes; Peter Glynne-Jones; Sylvia Gebhardt; Aleksandrs Bolhovitins; Romans Poltarjonoks; Kees Weijer; Andreas Schönecker; Martyn Hill; Sandy Cochran
Journal:  Sensors (Basel)       Date:  2014-08-13       Impact factor: 3.576

Review 7.  [Research progress in the application of external field separation technology and microfluidic technology in the separation of micro/nanoscales].

Authors:  Jiaxuan Cui; Lu Liu; Donghao Li; Xiangfan Piao
Journal:  Se Pu       Date:  2021-11

8.  Acoustic force mapping in a hybrid acoustic-optical micromanipulation device supporting high resolution optical imaging.

Authors:  Gregor Thalhammer; Craig McDougall; Michael Peter MacDonald; Monika Ritsch-Marte
Journal:  Lab Chip       Date:  2016-04-21       Impact factor: 6.799

9.  High throughput imaging cytometer with acoustic focussing.

Authors:  Robert Zmijan; Umesh S Jonnalagadda; Dario Carugo; Yu Kochi; Elizabeth Lemm; Graham Packham; Martyn Hill; Peter Glynne-Jones
Journal:  RSC Adv       Date:  2015-10-01       Impact factor: 3.361

10.  Formation of inverse Chladni patterns in liquids at microscale: roles of acoustic radiation and streaming-induced drag forces.

Authors:  Junjun Lei
Journal:  Microfluid Nanofluidics       Date:  2017-03-03       Impact factor: 2.529

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