Issue 15, 2022

Three-dimensional heating and patterning dynamics of particles in microscale acoustic tweezers

Abstract

Acoustic tweezers facilitate a noninvasive, contactless, and label-free method for the precise manipulation of micro objects, including biological cells. Although cells are exposed to mechanical and thermal stress, acoustic tweezers are usually considered as biocompatible. Here, we present a holistic experimental approach to reveal the correlation between acoustic fields, acoustophoretic motion and heating effects of particles induced by an acoustic tweezer setup. The system is based on surface acoustic waves and was characterized by applying laser Doppler vibrometry, astigmatism particle tracking velocimetry and luminescence lifetime imaging. In situ measurements with high spatial and temporal resolution reveal a three-dimensional particle patterning coinciding with the experimentally assisted numerical result of the acoustic radiation force distribution. In addition, a considerable and rapid heating up to 55 °C depending on specific parameters was observed. Although these temperatures may be harmful to living cells, counter-measures can be found as the time scales of patterning and heating are shown to be different.

Graphical abstract: Three-dimensional heating and patterning dynamics of particles in microscale acoustic tweezers

Supplementary files

Article information

Article type
Paper
Submitted
01 Mar 2022
Accepted
10 Jul 2022
First published
12 Jul 2022
This article is Open Access
Creative Commons BY license

Lab Chip, 2022,22, 2886-2901

Three-dimensional heating and patterning dynamics of particles in microscale acoustic tweezers

R. Weser, Z. Deng, V. V. Kondalkar, A. N. Darinskii, C. Cierpka, H. Schmidt and J. König, Lab Chip, 2022, 22, 2886 DOI: 10.1039/D2LC00200K

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