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Journal article · Preprint article · Conference paper

Numerical study of the coupling layer between transducer and chip in acoustofluidic devices

From

Department of Physics, Technical University of Denmark1

Biophysics and Fluids, Department of Physics, Technical University of Denmark2

By numerical simulation in two and three dimensions, the coupling layer between the transducer and microfluidic chip in ultrasound acoustofluidic devices is studied. The model includes the transducer with electrodes, microfluidic chip with a liquid-filled microchannel, and coupling layer between the transducer and chip.

Two commonly used coupling materials, solid epoxy glue and viscous glycerol, as well as two commonly used device types, glass capillary tubes and silicon-glass chips, are considered. It is studied how acoustic resonances in ideal devices without a coupling layer are either sustained or attenuated as a coupling layer of increasing thickness is inserted.

A simple criterion based on the phase of the acoustic wave for whether a given zero-layer resonance is sustained or attenuated by the addition of a coupling layer is established. Finally, by controlling the thickness and the material, it is shown that the coupling layer can be used as a design component for optimal and robust acoustofluidic resonances.

Language: English
Publisher: Acoustical Society of America
Year: 2021
Pages: 3096-3105
ISSN: 01630962 , 00014966 and 15208524
Types: Journal article , Preprint article and Conference paper
DOI: 10.1121/10.0004871
ORCIDs: Bodé, William Naundrup and Bruus, Henrik
Keywords

physics.flu-dyn

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