首页> 外文会议>International Conference on Nanochannels, Microchannels and Minichannels; 20070618-20; Puebla(MX) >SELECTIVE WETTABILITY ASSISTED NANOLITER SAMPLE GENERATION VIA ELECTROWETTING-BASED TRANSPORTATION
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SELECTIVE WETTABILITY ASSISTED NANOLITER SAMPLE GENERATION VIA ELECTROWETTING-BASED TRANSPORTATION

机译:通过基于电泳的运输选择性地辅助生成纳米样品

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摘要

A novel method for nanoliter sample generation is demonstrated. In this method, an electrowetting-based platform (EWOD) was used to transport a water droplet which was sandwiched between two hydrophobic plates, and the transportation was carried out by the direct electrical control of planar electrodes on the bottom glass substrate. In contrast to the air environment in ordinary EWOD, silicone oil was employed to surround the water droplet to reduce the surface hysteresis; therefore, the fluidic operations including cutting and transportation became easier to manipulate. While the droplet was moving through the electrodes, a nanoliter sample was produced within the circular hydrophilic area which was patterned on the upper ITO coated plate. Hence, based on the definition of selective wettability areas, the sample volume is capable to be well generated and controlled. Besides, in order to optimize the dimensions of electrode, the dimensional criterion for complete sample generation was investigated. The result shows that larger electrode width permits more flexibility to determine the radius of hydrophilic circle. Upon this mechanism, the hydrophilic circle of 0.25 mm diameter is able to generate the tiny sample of 3.9 nanoliter. Since the dimensions of the hydrophilic circle could be easily patterned in tens microns, this method has the potential to achieve the picoliter sample via similar procedure. Consequently, according to the tiny sample generation and reduction of hysteresis, such method is well-suitable for the versatile applications.
机译:证明了一种用于纳升样品生成的新方法。在该方法中,使用基于电润湿的平台(EWOD)来运输夹在两个疏水板之间的水滴,并通过直接电控制底部玻璃基板上的平面电极来进行运输。与普通EWOD中的空气环境相反,硅油被用来包围水滴以减少表面滞后现象。因此,包括切割和运输在内的流体操作变得更易于操作。当液滴移动通过电极时,在圆形亲水区域内产生了纳升样品,该样品在上部ITO涂层板上构图。因此,基于选择性润湿区域的定义,可以很好地生成和控制样品量。此外,为了优化电极的尺寸,研究了用于完整样品产生的尺寸标准。结果表明,较大的电极宽度允许更大的灵活性来确定亲水圆的半径。基于这种机理,直径为0.25 mm的亲水性圆能够生成3.9纳升的微小样品。由于可以很容易地在数十微米的范围内对亲水性环的尺寸进行图案化,因此该方法具有通过类似程序获得皮升样品的潜力。因此,根据微小样品的产生和磁滞的减少,这种方法非常适合通用应用。

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