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Electrowetting on Superhydrophobic Surfaces: Present Status and Prospects

机译:超疏水表面上的电润湿:现状和前景

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摘要

Electrowetting devices with an initial superhydrophobic water contact angle (>150°) have now been demonstrated on a variety of structured substrates. These substrates are more complex than a conventional superhydrophobic surface since electrowetting requires an electrical conductor that is coated with a high-performance dielectric and a hydrophobic fluoropolymer. Substrate structures that have been studied include silicon nanoposts and nanowires, carbon nanofibers and nanotubes, and polymer microposts. Even though these structured surfaces are geometrically diverse, there are several consistencies in electrowetting behavior for all these platforms. As an electrowetting bias of 10's of volts is applied between a saline drop and the substrate, the macroscopically observed contact angle is typically decreased from >150° to ~100°. As the voltage is increased an electromechanical force promotes capillary wetting between the substrate structures, and the saline drop transitions from the Cassie state to the Wenzel state. The Wenzel state presents a new energy minimum for the system, and in all current experiments the wetting is irreversible. Transition from the Wenzel state back to the Cassie state has been demonstrated by means of liquid boiling or addition of a second non-polar liquid. The importance of these recent investigations includes the dynamic tuning of the wetting on a superhydrophobic surface, and improved understanding of electrowetting on, and into, structured surfaces.
机译:现在已经在各种结构化基材上证明了具有初始超疏水性水接触角(> 150°)的电润湿设备。这些基材比常规的超疏水表面更为复杂,因为电润湿需要电导体涂覆有高性能电介质和疏水性含氟聚合物。已研究的基板结构包括硅纳米柱和纳米线,碳纳米纤维和纳米管以及聚合物微柱。即使这些结构化表面的几何形状各不相同,但对于所有这些平台,在电润湿行为中仍存在一些一致性。当在盐水滴和基材之间施加10伏特的电润湿偏压时,通常观察到的接触角通常从> 150°减小到〜100°。随着电压的增加,机电力促进了基板结构之间的毛细管润湿,并且盐水滴从卡西状态过渡到温泽尔状态。 Wenzel状态为系统提供了一个新的最低能量,在所有当前实验中,润湿都是不可逆的。已经通过液体沸腾或添加第二种非极性液体证明了从温泽尔状态回到卡西状态的转变。这些最新研究的重要性包括动态调节超疏水表面上的润湿性,以及改善对结构化表面和结构化表面电润湿的理解。

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