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Slippery Surface Based on Photoelectric Responsive Nanoporous Composites with Optimal Wettability Region for Droplets Multifunctional Manipulation

机译:基于具有最佳润湿性的光电响应性纳米多孔复合材料的光滑表面用于液滴的多功能操纵

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摘要

The development of responsive slippery surfaces is important because of the high demand for such materials in the fields of liquid manipulation on biochips, microfluidics, microreactions, and liquid‐harvesting devices. Although great progress has been achieved, the effect of substrate wettability on slippery surfaces stability is overlooked by scientists. In addition, current responsive slippery surfaces generally function utilizing single external stimuli just for imprecisely controlling liquid motion, while advanced intelligences are always expected to be integrated into one smart interface material for widespread multifunctional applications. Therefore, designing slippery surfaces that collaboratively respond to complex external stimuli and possess sophisticated composite function for expanding applications from controlling droplets motion to patterned writing is urgently needed but remains a challenge. Here, a photoelectric cooperative‐responsive slippery surface based on ZnO nanoporous composites is demonstrated. First, the effect of composite surface wettability on slippery surface stability is systematically researched and the optimum wettability region for fabricating stable slippery surfaces is determined. Furthermore, controllable droplet motion and patterned writing are realized on the same slippery surfaces under photoelectric cooperative stimuli, and the related response mechanism is also deeply studied. This kind of material has potential applications in biochips, microfluidics, in situ patterning, and water‐harvesting systems.
机译:由于在生物芯片,微流控,微反应和液体收集装置上的液体处理领域中对此类材料的需求很高,因此响应性光滑表面的开发非常重要。尽管已经取得了很大的进步,但是科学家却忽略了基材润湿性对光滑表面稳定性的影响。另外,电流响应性光滑表面通常仅利用单个外部刺激来功能以不精确地控制液体运动,而总是期望将高级智能集成到一种智能接口材料中,以用于广泛的多功能应用。因此,迫切需要设计一种光滑的表面,以协同响应复杂的外部刺激并具有复杂的复合功能,以扩展应用范围,从控制墨滴运动到图案化书写,但这仍然是一个挑战。在此,展示了基于ZnO纳米多孔复合材料的光电合作响应式光滑表面。首先,系统地研究了复合材料表面润湿性对光滑表面稳定性的影响,并确定了制造稳定光滑表面的最佳润湿性区域。此外,在光电合作刺激下,在相同的光滑表面上实现了可控的液滴运动和图案化写入,并对相关的响应机理也进行了深入研究。这种材料在生物芯片,微流控技术,原位制图和集水系统中具有潜在的应用。

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