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Microparticle Manipulation by Standing Surface Acoustic Waves with Dual-frequency Excitations
Published on: August 21, 2018
Frequency-programmable particle routing and separation via steerable SAWs from azimuthally tapered interdigital
Liang Shen1, Wang Chaohui2, Junchao Lu2
1Department of Mechanical Engineering, Virginia Polytechnic Institute and State University, Blacksburg, VA, 24060, USA. tianz@vt.edu.
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This study presents a frequency-programmable, acoustofluidic particle routing and separation platform that enables frequency-dependent adjustment of the trajectories and destinations of micro- and submicrometer particles in continuous flows, thereby achieving outlet-switchable particle separation and on-demand switching of particle routing destinations. These capabilities arise from our platform's ability to steer traveling/standing surface acoustic waves (SAWs) via frequency tuning. To achieve these particle routing and separation and SAW control abilities, particularly, our platform employs two azimuthally tapered, frequency-steerable interdigital transducers (AFIDTs), each with azimuthally continuously tapered electrode widths and spacings. Arranged with rotational symmetry, paired AFIDTs can generate steerable standing SAWs whose node-line orientation rotates with excitation frequency. This frequency-steering function was validated by laser vibrometry and particle patterning. We then successfully demonstrated on-demand, frequency-programmable adjustment of micro- and submicrometer particle routes and switching of target outlets, when continuously flowing micro- and submicrometer particles (e.g., polystyrene beads, silica particles, and Jurkat cells) in a microchannel with three exits. Moreover, mixed 5 and 10 μm particles were effectively separated by exploiting size-dependent acoustic radiation forces. Numerical simulations of the SAW and streaming fields corroborated experimental observations. Our frequency-steerable AFIDT platform provides a compact, label-free approach for on-demand, programmable particle routing/separation, with strong potential for integration into microfluidic separation and diagnostic systems.

