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微尺度声镊中粒子的三维加热和图案化动力学。

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

机构信息

Leibniz Institute for Solid State and Materials Research Dresden, SAWLab Saxony, Dresden, Germany.

Institute of Thermodynamics and Fluid Mechanics, Technische Universität Ilmenau, Ilmenau, Germany.

出版信息

Lab Chip. 2022 Jul 26;22(15):2886-2901. doi: 10.1039/d2lc00200k.

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. 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.

摘要

声镊通过非接触、无标记的方式精确操纵微物体,包括生物细胞,是一种非常便利的方法。尽管细胞会受到机械和热应力的影响,但声镊通常被认为是生物相容的。在这里,我们提出了一种整体实验方法来揭示声镊系统中声场、声悬浮运动和粒子加热效应之间的相关性。该系统基于表面声波,并通过激光多普勒测振仪、像散粒子跟踪测速法和荧光寿命成像法进行了表征。具有高时空分辨率的测量结果揭示了与实验辅助的声辐射力分布数值结果相吻合的三维粒子图案。此外,还观察到了相当大且快速的升温,最高可达 55°C,具体取决于特定参数。尽管这些温度可能对活细胞有害,但可以找到相应的对策,因为图案化和加热的时间尺度不同。

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