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On-chip micromanipulation using a magnetically driven micromanipulator with an acoustically oscillating bubble

机译:使用带声振荡气泡的磁驱动微操纵器进行片上微操纵

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This paper presents a magnetically driven micromanipulator for biological and microscale (bio/micro-) object manipulation in a microfluidic chip. The proposed micromanipulator mainly consists of a gaseous bubble that functions as a gripping tool and twin permanent magnets allowing for two-dimensional (2D) motion control in an aqueous medium. First, the 2D motion control of the micromanipulator (horizontal, vertical, and rotational motions) was demonstrated by using an external magnetic controller attached to the bottom of the chip, capable of altering the interaction forces induced by twin magnets installed inside both the micromanipulator and controller. Second, the micro-object manipulation was separately tested with glass beads (100 mu m diameter) and steel balls (600 mu m diameter) using an acoustically oscillating bubble. When the bubble was acoustically excited around its natural frequency by a piezoactuator, the radiation force generated from it attracted neighboring objects. The capturing force generated from an acoustically excited bubble was indirectly measured using the glass beads in a mini-channel. The maximum capturing force occurring at the natural frequency of the bubble was approximately 390 nN. Finally, the manipulation of the steel balls on a chip was achieved with the use of both the magnetic and acoustic actuation. This micromanipulation technique can be applied to cell manipulation, micro-assembly, etc., with the advantage of minimizing any contact damage through the use of the bubble. (C) 2016 Elsevier B.V. All rights reserved.
机译:本文提出了一种磁驱动微操纵器,用于微流控芯片中的生物和微尺度(生物/微)物体操纵。提出的微操纵器主要由用作抓持工具的气态气泡和允许在水性介质中进行二维(2D)运动控制的双永磁体组成。首先,通过使用附着在芯片底部的外部磁控制器来演示微操纵器的2D运动控制(水平,垂直和旋转运动),该控制器能够改变由安装在微操纵器内部和外部的双磁体感应的相互作用力。控制器。其次,使用声波气泡分别用玻璃珠(直径100微米)和钢珠(直径600微米)分别测试微物体的操纵。当气泡被压电致动器在其固有频率附近进行声学激发时,气泡产生的辐射力吸引了周围的物体。使用小通道中的玻璃珠间接测量了从声激发的气泡产生的捕获力。在气泡的固有频率处出现的最大捕获力约为390 nN。最终,通过使用磁和声致动来实现芯片上钢球的操纵。可以将这种微操纵技术应用于细胞操纵,微装配等,其优点是通过使用气泡使接触破坏最小化。 (C)2016 Elsevier B.V.保留所有权利。

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