Spatial selective manipulation of microbubbles by tunable surface acoustic waves
Author(s) -
Wei Zhou,
Lili Niu,
Feiyan Cai,
Fei Li,
Chen Wang,
Xiaowei Huang,
Jingjing Wang,
Junru Wu,
Long Meng,
Hairong Zheng
Publication year - 2016
Publication title -
biomicrofluidics
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.634
H-Index - 63
ISSN - 1932-1058
DOI - 10.1063/1.4954934
Subject(s) - acoustics , signal (programming language) , microbubbles , transducer , acoustic wave , displacement (psychology) , aperture (computer memory) , excitation , microfluidics , materials science , phase (matter) , ultrasonic sensor , computer science , physics , ultrasound , nanotechnology , psychology , quantum mechanics , psychotherapist , programming language
A microfluidic device based on a pair of slant-finger interdigital transducers (SFITs) is developed to achieve a selective and flexible manipulation of microbubbles (MBs) by surface acoustic waves (SAWs). The resonance frequency of SAWs generated by the SFITs depends on the location of its parallel pathway; the particles at different locations of the SAWs' pathway can be controlled selectively by choosing the frequency of the excitation signal applied on the SFITs. By adjusting the input signal continuously, MBs can be transported along the acoustic aperture precisely. The displacement of MBs has a linear relationship with the frequency shift. The resolution of transportation is 15.19 ± 2.65 μ m when the shift of input signal frequency is at a step of 10 kHz. In addition, the MBs can be controlled in a two-dimensional plane by combining variations of the frequency and the relative phase of the excitation signal applied on the SFITs simultaneously. This technology may open up the possibility of selectively and flexibly manipulating MBs using a simple one-dimensional device.
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