Dynamic-field devices for the ultrasonic manipulation of microparticles

被引:128
作者
Drinkwater, Bruce W. [1 ]
机构
[1] Univ Bristol, Dept Mech Engn, Bristol BS8 1TR, Avon, England
基金
英国工程与自然科学研究理事会;
关键词
ACOUSTIC-RADIATION FORCE; STANDING-WAVE FIELD; PARTICLE MANIPULATION; CELLS; SEPARATION; PRESSURE; DRIVEN; MICROMANIPULATION; DEFORMATION; RESONATOR;
D O I
10.1039/c6lc00502k
中图分类号
Q5 [生物化学];
学科分类号
071010 ; 081704 ;
摘要
The use of acoustic radiation forces in lab-on-a-chip environments has seen a rapid development in recent years. Operations such as particle sieving, sorting and characterisation are becoming increasingly common with a range of applications in the biomedical sciences. Traditionally, these applications rely on static patterns of ultrasonic pressure and are often collectively referred to as ultrasonic standing wave devices. Recent years have also seen the emergence of devices which capitalise on dynamic and reconfigurable ultrasonic fields and these are the subject of this review. Dynamic ultrasonic fields lead to acoustic radiation forces that change with time. They have opened up the possibility of performing a wide range of manipulations such as the transport and rotation of individual particles or agglomerates. In addition, they have led to device reconfigurability, i.e. the ability of a single lab-on-a-chip device to perform multiple functions. This opens up the possibility of channel-less microfluidic devices which would have many applications, for example in biosensing and microscale assembly. This paper reviews the current state of the field of dynamic and reconfigurable ultrasonic particle manipulation devices and then discusses the open problems and future possibilities.
引用
收藏
页码:2360 / 2375
页数:16
相关论文
共 99 条
[1]  
[Anonymous], 1883, Philos. Trans. Roy. Meteor. Soc.
[2]   Iso-acoustic focusing of cells for size-insensitive acousto-mechanical phenotyping [J].
Augustsson, Per ;
Karlsen, Jonas T. ;
Su, Hao-Wei ;
Bruus, Henrik ;
Voldman, Joel .
NATURE COMMUNICATIONS, 2016, 7
[3]  
Augustsson P, 2011, LAB CHIP, V11, P4152, DOI [10.1039/c1lc20637k, 10.1039/C1lc20637k]
[4]   Multifunctional Nanoparticles for Drug Delivery and Molecular Imaging [J].
Bao, Gang ;
Mitragotri, Samir ;
Tong, Sheng .
ANNUAL REVIEW OF BIOMEDICAL ENGINEERING, VOL 15, 2013, 15 :253-282
[5]   Observation of a Single-Beam Gradient Force Acoustical Trap for Elastic Particles: Acoustical Tweezers [J].
Baresch, Diego ;
Thomas, Jean-Louis ;
Marchiano, Regis .
PHYSICAL REVIEW LETTERS, 2016, 116 (02)
[6]   Acoustic radiation- and streaming-induced microparticle velocities determined by microparticle image velocimetry in an ultrasound symmetry plane [J].
Barnkob, Rune ;
Augustsson, Per ;
Laurell, Thomas ;
Bruus, Henrik .
PHYSICAL REVIEW E, 2012, 86 (05)
[7]   Controlled cell aggregation in a pulsed acoustic field [J].
Bazou, Despina ;
Castro, Angelica ;
Hoyos, Mauricio .
ULTRASONICS, 2012, 52 (07) :842-850
[8]   Direct patterning of mammalian cells in an ultrasonic heptagon stencil [J].
Bernassau, A. L. ;
Gesellchen, F. ;
MacPherson, P. G. A. ;
Riehle, M. ;
Cumming, D. R. S. .
BIOMEDICAL MICRODEVICES, 2012, 14 (03) :559-564
[9]   RADIATION PRESSURE - HISTORY OF A MISLABELED TENSOR [J].
BEYER, RT .
JOURNAL OF THE ACOUSTICAL SOCIETY OF AMERICA, 1978, 63 (04) :1025-1030
[10]   Quantification of a novel h-shaped ultrasonic resonator for separation of biomaterials under terrestrial gravity and microgravity conditions [J].
Böhm, H ;
Briarty, LG ;
Lowe, KC ;
Power, JB ;
Benes, E ;
Davey, MR .
BIOTECHNOLOGY AND BIOENGINEERING, 2003, 82 (01) :74-85