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Systematic analysis of geometrical based unequal droplet splitting in digital microfluidics

机译:数字微流控中基于几何的不均等液滴分裂的系统分析

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This paper presents the thorough analysis of a new operator developed for unequal droplet splitting by geometrical modification of a conventional electrode in digital microfluidic (DMF) platforms. This operator functions in an area as small as the size of a conventional electrode divided into several smaller sub-electrodes addressable independently. Using this operator, droplets can be precisely split unequally with a high volume ratio, as well as being dispensed with a wide range of sizes from a reservoir. This operator functions without complications in the fabrication process and the need for additional external modules such as feedback control systems. To characterize the range of the applicability of this operator, the effects of the applied voltage, the gap height between the two plates, and the sub-electrode geometry on the splitting performance are studied. For high applied voltages, splitting is performed with an error close to 5% (similar to the splitting precision obtained in conventional DMF devices); whereas, for voltages close to the threshold value, the error is less than 1%. In this way the droplet size becomes fairly independent of the geometry and the gap height. The threshold splitting voltage versus gap height has also been studied and shows a linear behavior, facilitating the selection of proper voltages for high precision splitting. For the three sub-electrode patterns studied here (i.e. square, horizontal stripe, and vertical stripe), the results show that the square sub-electrodes provide higher reliability and a wider range of sizes for the split droplet as compared to the other patterns. The final part of the study illustrates that there is a linear relation between the area of the split droplets and the number of actuated sub-electrodes. This linear behavior allows for the selection of an appropriate number of the sub-electrodes to be actuated based on the desired volume of the droplet.
机译:本文介绍了通过在数字微流控(DMF)平台中对常规电极进行几何修改而开发的用于不均等液滴分裂的新型操作器的全面分析。该操作器在与常规电极尺寸一样小的区域中起作用,该常规电极被分成可独立寻址的几个较小的子电极。使用该操作器,液滴可以不均等地以高体积比精确地分离,并且可以从容器中分配各种尺寸的液滴。该操作员可以在制造过程中正常工作,并且不需要其他外部模块,例如反馈控制系统。为了表征该算子的适用范围,研究了施加电压,两块极板之间的间隙高度以及子电极几何形状对分裂性能的影响。对于高施加电压,分裂的误差接近5%(类似于传统DMF器件中获得的分裂精度)。而对于接近阈值的电压,误差小于1%。这样,液滴的尺寸变得与几何形状和间隙高度完全无关。还研究了阈值分割电压与间隙高度的关系,并显示了线性行为,这有助于选择合适的电压进行高精度分割。对于此处研究的三个子电极图案(即正方形,水平条纹和垂直条纹),结果显示,与其他样式相比,正方形子电极为裂开的液滴提供了更高的可靠性和更宽的尺寸范围。研究的最后一部分说明,分裂液滴的面积与激活的子电极的数量之间存在线性关系。该线性行为允许基于期望的液滴体积来选择适当数量的要被驱动的子电极。

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