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One-directional flow of ionic solutions along fine electrodes under an alternating current electric field

机译:交流电场下离子溶液沿细电极的单向流动

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摘要

Electric fields are widely used for controlling liquids in various research fields. To control a liquid, an alternating current (AC) electric field can offer unique advantages over a direct current (DC) electric field, such as fast and programmable flows and reduced side effects, namely the generation of gas bubbles. Here, we demonstrate one-directional flow along carbon nanotube nanowires under an AC electric field, with no additional equipment or frequency matching. This phenomenon has the following characteristics: First, the flow rates of the transported liquid were changed by altering the frequency showing Gaussian behaviour. Second, a particular frequency generated maximum liquid flow. Third, flow rates with an AC electric field (approximately nanolitre per minute) were much faster than those of a DC electric field (approximately picolitre per minute). Fourth, the flow rates could be controlled by changing the applied voltage, frequency, ion concentration of the solution and offset voltage. Our finding of microfluidic control using an AC electric field could provide a new method for controlling liquids in various research fields.
机译:电场在各种研究领域中广泛用于控制液体。为了控制液体,交流(AC)电场可以提供优于直流(DC)电场的独特优势,例如快速且可编程的流量以及减少的副作用,即气泡的产生。在这里,我们展示了在交流电场下沿着碳纳米管纳米线的单向流动,而没有其他设备或频率匹配。这种现象具有以下特征:首先,通过改变显示高斯行为的频率来改变所输送液体的流量。第二,特定的频率产生最大的液体流量。第三,具有交流电场(约每分钟约纳升)的流速比具有直流电场(约每分钟皮升)的流速快得多。第四,可以通过改变施加的电压,频率,溶液的离子浓度和补偿电压来控制流速。我们发现使用交流电场进行微流体控制可以为控制各种研究领域的液体提供一种新方法。

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