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Graphene doped ZnO films for photoelectrowetting on microchannels

机译:石墨烯掺杂的ZnO薄膜在微通道上进行光电润湿

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Photoelectrowetting on dielectric surfaces can be used to drive droplets of liquid along reconfigurable paths on a microfluidic chip using controlled optical signals. These electrostatically activated surfaces along the desired path eliminate the need for precision molded channels and discrete functional components such as microvalves and micropumps. The photoelectrowetting effect exploits the surface tension of the droplet to maintain its volume during the transportation pathway and the photoelectric properties of the substrate surface are used to induce reversible fluidic flow. The active light-driven substrate is structured from graphene doped zinc-oxide (ZnO-G) films deposited on ITO coated glass. This substrate is coated from the ZnO-G side with Ruthenium-based dye (N719) to maximize its absorbability. The light triggers two forces that enable the droplet to be transported along the substrate. The first arises from the induced hydrophobicity gradient formed across the droplet contact area with the substrate surface. Exposing the ZnO-G film to a broad spectrum white light source alters the surface's electric potential which induces a change in the droplet's contact angle and the associated hydrophobicity. Once the hydrophobicity gradient is generated the droplet will start to move in the direction of the wetting zone. The second force is also created by the optical input when the absorbed light generates a photoelectric potential that produces a piezo-electrical effect on the ZnO-G film. The light triggered piezo-electrical behavior of the ZnO-G film can be used to generate the erasable microchannels that can guide droplet movement through a microfluidic chip. Preliminary experiments are performed to investigate the photoelectric potential of light activated ZnO-G films.
机译:介电表面上的光电润湿可用于使用受控的光信号沿着微流控芯片上的可重构路径驱动液滴。这些沿所需路径的静电激活表面消除了对精密模制通道和离散功能组件(如微型阀和微型泵)的需求。光电润湿效应利用液滴的表面张力来在运输路径中维持其体积,并且使用基材表面的光电特性来诱导可逆的流体流动。有源光驱动基板由沉积在ITO涂层玻璃上的石墨烯掺杂的氧化锌(ZnO-G)膜构成。该基材从ZnO-G面涂上钌基染料(N719),以使其吸收能力最大化。光触发两个力,使液滴能够沿着基板传输。首先是由于在液滴与基材表面接触区域上形成的疏水性梯度引起的。 ZnO-G膜暴露于广谱白光源会改变表面的电势,从而导致液滴的接触角和相关的疏水性发生变化。一旦产生疏水性梯度,液滴将开始在润湿区域的方向上移动。当吸收的光产生在ZnO-G膜上产生压电效应的光电势时,第二力也由光输入产生。 ZnO-G膜的光触发压电行为可用于生成可擦除的微通道,该通道可引导液滴通过微流控芯片运动。进行了初步实验以研究光活化的ZnO-G薄膜的光电势。

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