Particle Manipulation Using Acoustic Radiation Forces in Micromachined Devices

被引:1
|
作者
Dual, Jurg [1 ]
Moeller, Dirk [1 ]
Neild, Adrian [2 ]
Oberti, Stefano [1 ]
Schwarz, Thomas [1 ]
Wang, Jingtao [1 ]
机构
[1] ETH Zentrum, Dept Mech & Proc Engn, Inst Mech Syst, CH-8092 Zurich, Switzerland
[2] Monash Univ, Dept Mech & Aerosp Engn, Clayton, Vic 3800, Australia
基金
瑞士国家科学基金会;
关键词
acoustic radiation force; numerical modeling; single particle manipulation; STANDING WAVES; VISCOUS-FLUID; CELLS; ULTRASOUND; FIELD; MICROFLUIDICS; PRESSURE; SPHERE;
D O I
10.1063/1.3703132
中图分类号
O59 [应用物理学];
学科分类号
摘要
Acoustic radiation forces are increasingly used for the handling of micron sized particles suspended in a fluid. The primary radiation forces arise as a nonlinear effect when an acoustic wave interacts with a single particle. In addition, secondary acoustic forces arise when several particles are present. Typically a resonance (at upper kHz to lower MHz frequencies) is set up in the system consisting of chip, fluid, particles and transducer. Both solid and fluid parts vibrate and are excited, for example, by piezoelectric elements. The pattern of the pressure distribution in the fluid then determines where the particles are located. The analytical formula by Gor'kov predicts the location of spherical compressible particles in the bulk of the fluid based on the acoustic field. Several fields might be superimposed to produce time independent or time varying patterns of particles in the fluid, resulting in the formation of lines, clumps or even in particle rotation. Excellent agreement between theory and experiment is found. For further particle handling, the acoustic manipulation can be combined with microfluidic flow, microgrippers, wire loops, optical tweezers, DEP, etc. depending on the application. In more complicated situations numerical solutions have to be found. Recently a code has been developed that can compute forces on fixed rigid particles in viscous fluids in general situations, e. g. for particles near walls or near other particles, as well as for particles of arbitrary shape. The code is based on the FVM (Finite Volume Method), solves the Navier-Stokes equations directly and also yields the acoustic streaming pattern. The viscosity increases the apparent size of the particle due to the Stokes layer, with the effect that the force is also increased.
引用
收藏
页码:27 / 32
页数:6
相关论文
共 50 条
  • [1] Strategies for single particle manipulation using acoustic radiation forces and external tools
    Oberti, Stefano
    Neild, Adrian
    Moeller, Dirk
    Dual, Jurg
    [J]. INTERNATIONAL CONGRESS ON ULTRASONICS, PROCEEDINGS, 2010, 3 (01): : 255 - 262
  • [2] Microfluidic manipulation of Caenorhabditis elegans using acoustic radiation forces
    Yu, Gan
    Hashmi, Ali
    Chen, Xiaolin
    Xu, Jie
    [J]. NANOTECHNOLOGY 2012, VOL 2: ELECTRONICS, DEVICES, FABRICATION, MEMS, FLUIDICS AND COMPUTATIONAL, 2012, : 310 - 313
  • [3] Particle Manipulation by Optical Forces in Microfluidic Devices
    Paie, Petra
    Zandrini, Tommaso
    Vazquez, Rebeca Martinez
    Osellame, Roberto
    Bragheri, Francesca
    [J]. MICROMACHINES, 2018, 9 (05)
  • [4] 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
    Schoenecker, Andreas
    Hill, Martyn
    Cochran, Sandy
    [J]. SENSORS, 2014, 14 (08): : 14806 - 14838
  • [5] Acoustic streaming in the transducer plane in ultrasonic particle manipulation devices
    Lei, Junjun
    Glynne-Jones, Peter
    Hill, Martyn
    [J]. LAB ON A CHIP, 2013, 13 (11) : 2133 - 2143
  • [6] Micromachined Optical Scanner Using Acoustic Radiation Force
    Sasaki, Takashi
    Takahashi, Yuya
    Hane, Kazuhiro
    [J]. 2023 INTERNATIONAL CONFERENCE ON OPTICAL MEMS AND NANOPHOTONICS, OMN AND SBFOTON INTERNATIONAL OPTICS AND PHOTONICS CONFERENCE, SBFOTON IOPC, 2023,
  • [7] A micromachined Stoneley acoustic wave system for continuous flow particle manipulation in microfluidic channels
    Yantchev, Ventsislav
    Enlund, Johannes
    Katardjiev, Ilia
    Johansson, Linda
    [J]. JOURNAL OF MICROMECHANICS AND MICROENGINEERING, 2010, 20 (03)
  • [8] CAPACITIVE MICROMACHINED ULTRASONIC TRANSDUCERS FOR ACOUSTIC MANIPULATION
    Mao, S. P.
    Zhong, K.
    Rochus, V.
    Severi, S.
    Nauwelaers, B.
    Tilmans, H. A. C.
    Rottenberg, X.
    [J]. 2015 TRANSDUCERS - 2015 18TH INTERNATIONAL CONFERENCE ON SOLID-STATE SENSORS, ACTUATORS AND MICROSYSTEMS (TRANSDUCERS), 2015, : 662 - 665
  • [9] Micromachined Piezoelectric Devices for Acoustic Applications
    Ren, Tian-Ling
    Shu, Yi
    Yang, Yi
    Zhou, Chang-Jian
    Wang, Yu-Feng
    Tian, He
    Zhang, Chang-Hai
    Sun, Hui
    Liu, Xuan
    [J]. 2012 IEEE INTERNATIONAL CONFERENCE ON ELECTRON DEVICES AND SOLID STATE CIRCUIT (EDSSC), 2012,
  • [10] Numerical simulation of acoustofluidic manipulation by radiation forces and acoustic streaming for complex particles
    Hahn, Philipp
    Leibacher, Ivo
    Baasch, Thierry
    Dual, Jurg
    [J]. LAB ON A CHIP, 2015, 15 (22) : 4302 - 4313