Surface acoustic wave concentration of particle and bioparticle suspensions

被引:192
|
作者
Li, Haiyan [1 ]
Friend, James R. [1 ]
Yeo, Leslie Y. [1 ]
机构
[1] Monash Univ, Micro Nanophys Res Lab, Dept Engn Mech, Clayton, Vic 3800, Australia
关键词
surface acoustic wave; particle concentration; biosensor;
D O I
10.1007/s10544-007-9058-2
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
A rapid particle concentration method in a sessile droplet has been developed using asymmetric surface acoustic wave (SAW) propagation on a substrate upon which the droplet is placed. Due to the asymmetry in the SAW propagation, azimuthal bulk liquid recirculation (acoustic streaming) is generated. Once the local particle concentration is sufficiently high within a particular streamline of the acoustic streaming convective flow, shear-induced migration gives rise to an inward radial force that concentrates the particles at the centre of the droplet. In this paper, a SAW device consists of a 0.75-mm thick, 127.68 degrees Y-X-axis-rotated cut, X-propagating LiNbO3 for a substrate and an interdigital transducer electrode (IDT) with 25 straight finger pairs in a simple repeating pattern, 12 mm aperture, and a wavelength of lambda=440 mu m was patterned on the substrate. The IDT was then driven with a sinusoidal signal at the resonance frequency f (0) of 8.611 MHz. To investigate the effect of particle type and size on the concentration process, three types of particles were used in this study, including fluorescent particles (1 mu m), polystyrene microspheres (3, 6, 20, 45 mu m), and living yeast cells (10-20 mu m). Different RF powers were applied ranging from 120 to 510 mW. The concentration processes occurs within 2 to 20 s, depending on the particle size, type and input radio frequency (RF) power, much faster than currently available particle concentration mechanisms due to the large convective velocities achieved using the SAW device. Moreover, this concentration method is efficient, concentrating the particles into an aggregate one-tenth the size of the original droplet. Most importantly, bioparticles can also be concentrated by this method; we have verified that yeast cells are not lysed by the SAW radiation during concentration. By using the rapid concentration process described in this work, the breadth of applications and measurement sensitivity of SAW biosensor systems should be greatly enhanced.
引用
收藏
页码:647 / 656
页数:10
相关论文
共 50 条
  • [31] Measurement of surface acoustic wave on a quartz ball with proximate electrodes to improve performance of ball surface acoustic wave device
    Kai, Satoshi
    Ote, Kazunori
    Mihara, Tsuyoshi
    Ohgi, Tsuneo
    Nakaso, Noritaka
    Satoh, Ichitaro
    Fukiura, Takeshi
    Tanaka, Hidekazu
    Yamanaka, Kazushi
    JAPANESE JOURNAL OF APPLIED PHYSICS PART 1-REGULAR PAPERS BRIEF COMMUNICATIONS & REVIEW PAPERS, 2007, 46 (7B): : 4723 - 4725
  • [32] A SU-8 liquid cell for surface acoustic wave biosensors
    Francis, LA
    Friedt, JM
    Bartic, C
    Campitelli, A
    MEMS, MOEMS, AND MICROMACHINING, 2004, 5455 : 353 - 363
  • [33] AuNP-Amplified Surface Acoustic Wave Sensor for the Quantification of Exosomes
    Wang, Chenyun
    Wang, Cancan
    Jin, Dan
    Yu, Yi
    Yang, Fan
    Zhang, Yulin
    Yao, Qunfeng
    Zhang, Guo-Jun
    ACS SENSORS, 2020, 5 (02) : 362 - 369
  • [34] A Scholte wave approach for ultrasonic surface acoustic wave elastography
    Liu, Jingfei
    Leer, Jurjen
    Aglayomov, Salavat R.
    Emelianov, Stanislav Y.
    MEDICAL PHYSICS, 2023, 50 (07) : 4138 - 4150
  • [35] The effect of acoustic field on the particle concentration profiles in fluidized bed
    Si, Chongdian
    Zhou, Jing
    Guo, Qingjie
    Liu, Guangjun
    INTERNATIONAL JOURNAL OF CHEMICAL REACTOR ENGINEERING, 2012, 10
  • [36] Experimental investigation of surface acoustic wave atomization
    Wang, Junxiong
    Hu, Hong
    Ye, Aipeng
    Chen, Jian
    Zhang, Peng
    SENSORS AND ACTUATORS A-PHYSICAL, 2016, 238 : 1 - 7
  • [37] Tactile Display Using Surface Acoustic Wave
    Takasaki, Masaya
    Tamon, Ryo
    Kotani, Hiroyuki
    Mizuno, Takeshi
    ACTUATOR 10, CONFERENCE PROCEEDINGS, 2010, : 528 - 532
  • [38] Simulation of a surface acoustic wave methane sensor
    Sun, Ping
    Feng, Xing
    Ou, Zhonghua
    MECHATRONICS, ROBOTICS AND AUTOMATION, PTS 1-3, 2013, 373-375 : 354 - +
  • [39] Surface acoustic wave devices for sensor applications
    刘博
    陈晓
    蔡华林
    穆罕默德·阿里·穆罕默德
    田祥光
    陶璐琪
    杨轶
    任天令
    Journal of Semiconductors, 2016, 37 (02) : 5 - 13
  • [40] A new microvalve controlled by surface acoustic wave
    Liu, Wei-Yue
    Fu, Xiang-Ting
    Zhang, Xiao-Quan
    Hu, Wen-Yan
    FERROELECTRICS, 2017, 515 (01) : 149 - 156