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Electrical Actuation-Induced Droplet Transport on Smooth and Superhydrophobic Surfaces

机译:电致感应液滴在光滑和超疏水表面上的传输

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摘要

Electrical control of liquid droplet motion and wettability has wide-ranging applications in the field of MEMS, lab-on-a-chip devices and surface engineering, in view of the resulting enhanced flow control opportunities, low power consumption and the absence of mechanical moving parts. This article summarizes recent progress towards understanding of the fundamentals underlying electrical actuation of droplets on smooth and superhydrophobic surfaces. Electrical actuation of liquid droplets with widely differing electrical properties on smooth surfaces is first discussed. Electromechanical considerations are employed to study the actuation force on a generic liquid droplet across the entire spectrum of electrical actuation regimes. The challenges in understanding the fluid flow and dissipation mechanisms associated with a discrete moving droplet are discussed. The role of electrical voltages, interfacial energies and surface morphology in determining droplet states (nonwetting Cassie state and wetting Wenzel state) and triggering state transitions on superhydrophobic surfaces is then mapped out. Critical phenomena associated with droplet transitions on superhydrophobic surfaces (energy barrier for the Cassie-Wenzel transition, lack of spontaneous reversibility of the Cassie-Wenzel transition, robustness of the Cassie state, and the role of the roughness elements) are analyzed. The article also highlights key avenues for future research in the fields of electrical actuation-based microfluidics and superhydrophobic surfaces.
机译:鉴于产生的增加的流量控制机会,低功耗和无需机械移动,对液滴运动和润湿性的电控制在MEMS,芯片实验室设备和表面工程领域具有广泛的应用部分。本文总结了在理解光滑和超疏水表面上液滴电驱动的基本原理方面的最新进展。首先讨论在光滑表面上具有广泛不同电特性的液滴的电驱动。机电方面的考虑被用来研究在整个电动致动范围谱中对通用液滴的致动力。讨论了在理解与离散运动液滴相关的流体流动和耗散机理方面的挑战。然后确定了电压,界面能和表面形态在确定液滴状态(非润湿的卡西状态和润湿的Wenzel状态)以及触发超疏水表面上的状态转变中的作用。分析了与超疏水表面上的液滴过渡有关的临界现象(Cassie-Wenzel过渡的能垒,Cassie-Wenzel过渡的自发可逆性缺乏,Cassie状态的鲁棒性以及粗糙度元素的作用)。本文还重点介绍了在基于电致动的微流体和超疏水表面领域中进行未来研究的关键途径。

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    Bahadur, V.; Garimella, S V;

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  • 年度 2010
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