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首页> 外文期刊>Journal of Micromechanics and Microengineering >Liquid metal droplet-enabled electrocapillary flow in biased alternating electric fields: a theoretical analysis from the perspective of induced-charge electrokinetics
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Liquid metal droplet-enabled electrocapillary flow in biased alternating electric fields: a theoretical analysis from the perspective of induced-charge electrokinetics

机译:偏置交替电场的液体金属液滴电储蓄流动:从诱导电动电动学的角度看理论分析

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The phenomenon of Marangoni chaotic electroconvection of electrolytes induced by liquid metal droplets has been serving as a method of choice for pumping of microfluidics in the past ten years. Although an external additional alternating voltage, usually being sufficiently small, was invariably employed in practical experiments for stabilizing the unidirectional liquid motion caused by a preexisted direct-current electric field, its subtle effect on the superimposed non-uniform surface tension and the final fluid transport state is still theoretically unclear. From the physical perspective of induced-charge electrokinetics, we present herein an analytical criteria for the conditions under which a sessile metal drop can actuate unidirectional liquid motion passing across it affected by a biased alternating voltage signal, wherein a mechanical balance between the linear pump pressure and nonlinear bipolar stress components exerted on the conducting drop surface has been taken into account. For accuracy validation, a numerical model was developed, in which multiple frequency electrochemical polarization was calculated under the Debye-Huckel limit, and coupled to the mechanical problem via inserting the resultant surface tension gradient as a source term of electrocapillary stress at the droplet-medium interface. The analytical solution accords well with the simulation results, in terms of the threshold voltage amplitude for effective liquid transport along the static potential gradient. At last, we demonstrate that the effect of continuous electrowetting can be fully exploited for simultaneous pumping and extraction of microscale impurities in closed fluid loops embedding a network of three-dimensional floating electrode plates for invoking auxiliary dielectrophoretic attraction. These results prove invaluable for achieving a high degree of freedom manipulation of particle and liquid contents in modern microfluidic systems with flexible conducting microdroplets.
机译:液态金属液滴诱导的电解质的Marangoni混沌电能的现象一直用作过去十年中微流体泵送的首选方法。虽然外部附加的交流电压通常在实际实验中总是采用的,但是在实际实验中总是采用,用于稳定由预先存在的直流电场引起的单向液体运动,其对叠加的非均匀表面张力和最终流体运输的微妙影响国家仍然不清楚。从诱导电压电流学的物理透视中,我们在本文中存在的分析标准用于术术根据偏置交流电压信号影响的单个液体滴的条件的分析标准,其中在线泵压力之间的机械平衡已经考虑了施加在导电表面上的非线性双极应力分量。为了精度验证,开发了一种数值模型,其中在Debye-Huckel极限下计算了多频电化学极化,并通过将所得表面张力梯度插入液滴介质的电储蓄应力的源期术语来耦合到机械问题界面。在沿着静态电位梯度的有效液体传输的阈值电压幅度方面,分析解决方案符合模拟结果。最后,我们证明可以充分利用连续电润湿的效果以同时泵送和提取封闭流体环中的微观杂质,嵌入三维浮动电极板网络以调用辅助介电泳吸引力。这些结果对于在具有柔性导电微量轧件的现代微流体系统中实现高度自由度处理粒子和液体含量的绝对自由度。

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