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Trapping, separating, and palpating microbead clusters in droplets and flows using capacitive micromachined ultrasonic transducers (CMUTs)

机译:使用电容微机械超声换能器(CMUT)捕获,分离和触碰液滴和流中的微珠簇

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摘要

Bead-based assays are incredibly popular in clinical and pharmacological settings for detecting single or multiple analytes. Separating and trapping beads are often integral steps, especially when such assays are conducted in microfluidic environments. Here, we report a first instance of the use of a capacitive micromachined ultrasonic transducer (CMUT) microarray for acoustically trapping silica beads within droplets into discrete, well-formed, circular clusters. We then demonstrate that the expansion and contraction of these clusters may be regulated via adjustments to the CMUT driving frequency. To our knowledge, this palpating action of aggregates has not been reported in other non-contact techniques. Bead manipulations are also replicated in a microchannel against flows with fluid velocities of 1.9 +/- 0.2 mm s(-1). The laminar flow conditions are exploited to sequentially trap bead clusters or separate large populations of beads into discrete streams by operating the CMUT microarray at threshold voltages. Unlike piezoelectric materials, CMUTs offer superior miniaturization through well established microfabrication techniques, better acoustic matching to fluids, and lower risk of sample heating. Thus, we believe this work illustrates the versatility of CMUT microarrays for use in future bead-based assays in lab-ona-chip (LOC) platforms.
机译:基于微珠的测定法在临床和药理学设置中非常流行,可用于检测单个或多个分析物。分离和捕获珠子通常是必不可少的步骤,尤其是在微流体环境中进行此类测定时。在这里,我们报告了使用电容微机械超声换能器(CMUT)芯片将液滴中的硅珠以声学方式捕获到离散的,形式良好的圆形簇中的第一个实例。然后,我们证明可以通过调整CMUT驱动频率来调节这些群集的扩展和收缩。据我们所知,聚集体的这种触诊作用尚未在其他非接触技术中得到报道。在微通道中,针对流体速度为1.9 +/- 0.2 mm s(-1)的流动,也可以复制微珠操作。通过在阈值电压下操作CMUT微阵列,利用层流条件来依次捕获磁珠簇或将大量磁珠分离成离散的流。与压电材料不同,CMUT通过完善的微细加工技术实现了卓越的小型化,与流体的声学匹配更好,并降低了样品加热的风险。因此,我们认为这项工作说明了CMUT芯片的多功能性,可用于未来的实验室芯片研究(LOC)平台中基于微珠的检测。

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