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Characterization of electrowetting, contact angle hysteresis, and adhesion on digital microfluidic devices with inkjet-printed electrodes

机译:带有喷墨印刷电极的数字微流控设备上电润湿,接触角滞后和附着力的表征

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摘要

This investigation characterizes electrowetting performance, contact angle hysteresis, contact line pinning force, and adhesion work on digital microfluidic devices with inkjet-printed electrodes. It also demonstrates electrowetting-induced droplet detachment on these devices. Average performance was similar to cleanroom-fabricated devices in all experimental measurements, but variability was persistently higher on inkjet-printed devices. This appears to be consistent with increased defect density and variation in local electrowetting number caused by increased roughness of printed electrodes. This work suggests that inkjet-printed devices are suitable for the study of colloidal transport and deposition under electric fields and electrowetting-induced droplet detachment when accompanied by rigorous uncertainty analysis.
机译:这项研究的特点是在具有喷墨打印电极的数字微流控设备上的电润湿性能,接触角滞后,接触线钉扎力和粘附作用。它还证明了在这些设备上电润湿引起的液滴分离。在所有实验测量中,平均性能均与无尘室制造的设备相似,但喷墨打印设备的可变性始终较高。这似乎与增加的缺陷密度和由印刷电极的粗糙度增加引起的局部电润湿数变化相一致。这项工作表明,在进行严格的不确定性分析时,喷墨打印设备适用于研究电场和电润湿引起的液滴分离下的胶体运输和沉积。

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