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Laser vibrometry characterisation of a microfluidic lab-on-a-chip device: a preliminary investigation

机译:激光振动测量表征微流控芯片实验室设备:初步调查

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摘要

Since their original inception as ultrasound contrast agents, potential applications of microbubbles have evolved to encompass molecular imaging and targeted drug delivery. As these areas develop, so does the need to understand the mechanisms behind the interaction of microbubbles both with biological tissue and with other microbubbles. There is therefore a metrological requirement to develop a controlled environment in which to study these processes. Presented here is the design and characterisation of such a system, which consists of a microfluidic chip, specifically developed for manipulating microbubbles using both optical and acoustic trapping. A laser vibrometer is used to observe the coupling of acoustic energy into the chip from a piezoelectric transducer bonded to the surface. Measurement of the velocity of surface waves on the chip is investigated as a potential method for inferring the nature of the acoustic fields excited within the liquid medium of the device. Comparison of measured surface wavelengths with wave types suggests the observation of anti-symmetric Lamb or Love-Kirchhoff waves. Further visual confirmation of the acoustic fields through bubble aggregation highlights differences between the model and experimental results in predicting the position of acoustic pressure nodes in relation to excitation frequency.
机译:自从最初作为超声造影剂以来,微泡的潜在应用已经发展到涵盖分子成像和靶向药物递送。随着这些领域的发展,也需要理解微泡与生物组织和其他微泡相互作用的机理。因此,存在对计量条件的要求,以开发一种可控制的环境来研究这些过程。这里介绍的是这种系统的设计和特性,该系统由微流控芯片组成,该芯片是专门为使用光学和声波捕获来操纵微气泡而开发的。激光振动计用于观察声能从键合到表面的压电换能器到芯片的耦合。研究了表面波在芯片上的速度的测量,作为一种潜在的方法来推断器件液体介质中激发的声场的性质。将测得的表面波长与波类型进行比较表明,可以观察到反对称的Lamb或Love-Kirchhoff波。通过气泡聚集对声场进行进一步的视觉确认,突出了模型和实验结果之间的差异,从而可以预测声压节点相对于激励频率的位置。

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