首页> 外文会议>ASME international mechanical engineering congress and exposition;IMECE2011 >ACOUSTIC MANIPULATION OF PARTICLES IN VARIOUSLY SHAPED LIQUID DROPLETS
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ACOUSTIC MANIPULATION OF PARTICLES IN VARIOUSLY SHAPED LIQUID DROPLETS

机译:各种形状的液体颗粒中的颗粒声学处理

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摘要

The ability to precisely trap, transport and manipulate micrometer-sized objects, including biological cells, DNA-coated microspheres and microorganisms, is very important in life science studies and biomedical applications. In this study, acoustic radiation force in an ultrasonic standing wave field is used for micro-objects manipulation. Free surfaces of liquid droplets are used as sound reflectors to confine sound waves inside the droplets. Two techniques were developed for the precise control of droplet shapes: edge pinning and hydrophilic/hydrophobic interface pinning. For all tested droplet shapes, including circular, annular and rectangular, our experiments show that polymer micro particles can be manipulated by ultrasound and form into a variety of patterns, for example, concentric rings and radial lines in an annular droplet. The complexity of the pattern increases with increasing frequency, and the observations are in line with simulation results. The acoustic manipulation technique developed here has the potential to be integrated into a more complex on-chip microfluidic circuit. Especially because our method is well compatible with electrowetting technology, which is a powerful tool for manipulating droplets with free surfaces, the combination of the two methods can provide more versatile manipulation abilities and may bring a wealth of novel applications.
机译:在生命科学研究和生物医学应用中,精确捕获,运输和操纵微米尺寸物体(包括生物细胞,DNA包裹的微球和微生物)的能力非常重要。在这项研究中,超声驻波场中的声辐射力用于微物体操纵。液滴的自由表面用作声反射器,将声波限制在液滴内部。为精确控制液滴形状开发了两种技术:边缘钉扎和亲水/疏水界面钉扎。对于所有测试的液滴形状(包括圆形,环形和矩形),我们的实验表明,聚合物微粒可以通过超声处理,并形成各种图案,例如,环形液滴中的同心环和径向线。模式的复杂度随着频率的增加而增加,并且观察结果与仿真结果一致。此处开发的声学处理技术具有集成到更复杂的芯片上微流体电路中的潜力。特别是因为我们的方法与电润湿技术完全兼容,电润湿技术是处理具有自由表面的液滴的强大工具,因此两种方法的结合可以提供更多的通用操作能力,并可能带来许多新颖的应用。

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