Events9th International Electronic Conference on Sensors and Applications
Published
This submission belongs to the session A. Chemo- and Biosensors of the event 9th International Electronic Conference on Sensors and Applications
Published date
01 Nov, 2022
Academic Editor
author-avatarFrancisco Falcone
Citation
Gianluca Mezzanzanica, Olivier Français, Martina Siena, Luigi Agazzi, Stefano Mariani, A microfluidic device based on standing surface acoustic waves for sorting and trapping microparticles, in Proceedings of 9th International Electronic Conference on Sensors and Applications, 1 November–15 November 2022, MDPI: Basel, Switzerland, doi: 10.3390/ecsa-9-13362
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A microfluidic device based on standing surface acoustic waves for sorting and trapping microparticles

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Luigi Agazzi 2
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1. Politecnico di Milano, Ph.D. Student in Structural Seismic and Geotechnical Engineering, Dept. of Civil and Environmental Engineering, Piazza Leonardo da Vinci, 32, 20133 Milano, Italy
2. Politecnico di Milano, Doc. in Materials Engineering and Nanotechnology, Piazza Leonardo da Vinci, 32, 20133 Milano, Italy
3. Politecnico di Milano, Dept. of Civil and Environmental Engineering, Piazza Leonardo da Vinci, 32, 20133 Milano, Italy
4. Professor, ESYCOM lab, Univ Gustave Eiffel, CNRS, F-77454 Marne-la-Vallée, France
Abstract

Microfluidic devices can provide means to handle the transport of (bio) particles within a fluid flow. The great advantage of microscale devices is that different components can be integrated in a single chip at low costs, with a negligible power consumption, compared to alternative solutions. In this work, a numerical investigation is provided on the exploitation of standing Surface Acoustic Waves (SAW) generated in a microfluidic channel to manipulate micro-particles. Far-field waves are generated via several InterDigital Transducers (IDT), travel on the surface of a piezoelectric substrate and finally interfere in the channel giving rise to a standing solution in terms of acoustic pressure. Results are reported for different geometries of the channel, to define the sensitivity of the acoustic pressure field to the relevant geometric features of the channel. This investigation shows how the acoustic radiation and drag forces interact with each other to move and focus the particles, possibly leading to a separation of heterogeneous ones, and generally provide a way to manipulate them at a small scale.

Keywords
Microfluidics
Surface Acoustic Waves
InterDigital Transducers
Acoustophoresis
Particle Manipulation
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