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Statics and dynamics of electrowetting on pillar-arrayed surfaces at the nanoscale

机译:静力学和动力学的电润湿pillar-arrayed表面在纳米尺度上

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摘要

The statics and dynamics of electrowetting on pillar-arrayed surfaces at the nanoscale are studied using molecular dynamics simulations. Under a gradually increased electric field, a droplet is pushed by the electromechanical force to spread, and goes through the Cassie state, the Cassie-to-Wenzel wetting transition and the Wenzel state, which can be characterized by the electrowetting number at the micro-scale eta(m). The expansion of the liquid is direction-dependent and influenced by the surface topology. A positive voltage is induced in the bulk droplet, while a negative one is induced in the liquid confined among the pillars, which makes the liquid hard to spread and further polarize. Based on the molecular kinetic theory and the wetting states, theoretical models have been proposed to comprehend the physical mechanisms in the statics and dynamics of electrowetting, and are validated by our simulations. Our findings may help to understand the electrowetting on microtextured surfaces and assist the future design of engineered surfaces in practical applications.
机译:静力学和动力学的电润湿pillar-arrayed表面在纳米尺度上使用分子动力学模拟研究。根据电场逐渐增加,液滴由机电推的力量传播,通过卡西状态,Cassie-to-Wenzel润湿和过渡文策尔的状态,这可以为特征的在微观层次上电润湿数量埃塔(m)。液体的扩张direction-dependent和受表面的影响拓扑。大部分液滴,而消极的诱导液体在柱中,哪个使液体很难,进一步传播极化。和润湿状态,理论模型提出理解物理在静力学和动力学机制电润湿,并由我们进行验证模拟。电润湿表面显微组织和协助工程的未来设计的表面在实际的应用程序。

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