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Fast Transport of Water Droplets over a Thermo-Switchable Surface Using Rewritable Wettability Gradient

机译:使用可重写润湿性梯度在热切割表面上快速运输水滴

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In spite of the reported temperature dependent tunability in wettability of poly(N-isopropylacrylamide) (PNI-PAAm) surfaces for below and above lower critical solution temperature (32 degrees C), the transport of water droplets is inhibited by the large contact angle hysteresis. Herein, for the first time, we report on-demand, fast, and reconfigurable droplet manipulation over a PNIPAAm grafted structured polymer surface using temperature-induced wettability gradient. Our study reveals that the PNIPAAm grafted on intrinsically superhydrophobic surfaces exhibit hydrophilic nature with high contact angle hysteresis below 30 degrees C and superhydrophobic nature with ultralow contact angle hysteresis above 36 degrees C. The transition region between 30 and 36 degrees C is characterized by a large change in water contact angle (similar to 100 degrees) with a concomitant change in contact angle hysteresis. By utilizing this "transport zone" wherein driving forces overcome the frictional forces, We demonstrate macroscopic transport of water drops with a maximum transport velocity of approximately 40 cm/s. The theoretical calculations on the force measurements concur with dominating behavior of driving forces across the transport zone. The tunability in transport velocity by varying the temperature gradient along the surface or the inclination angle of the surface (maximum angle of 15 with a reduced velocity 0.4 mm/s) is also elucidated. In addition, as a practical application, coalescence of water droplets is demonstrated by using the temperature controlled wettability gradient. The presented results are expected to provide new insights on the design and fabrication of smart multifunctional surfaces for applications such as biochemical analysis, self-cleaning, and microfluidics.
机译:尽管在低于和高于临界溶液温度(32℃)的聚(N-异丙基丙烯酰胺)(PNI-PAAM)表面的润湿性(PNI-PAAM)表面的温度依赖性可调节性(PNI-PAAM)表面(32摄氏度)中,通过大的接触角滞后抑制水滴的运输。在此,我们首次通过温度诱导的润湿性梯度向泊地接枝结构化聚合物表面报告按需,快速和可重新配置的液滴操纵。我们的研究表明,在本质上超疏水表面上接枝的泊匹帕姆具有高度接触角滞后的亲水性,具有高于36摄氏度的超级接触角滞后和超疏水性质。30至36摄氏度之间的过渡区域的特征在于随着接触角滞后的伴随变化,改变水接触角(类似于100度)。通过利用该“运输区”其中驱动力克服摩擦力,我们展示了水滴的宏观传输,其最大输送速度约为40cm / s。作者通过改变沿表面的温度梯度或表面的倾斜角度(具有减小的速度0.4mm / s的最大15的最大角度,通过改变温度梯度,通过改变速度的可调谐性。另外,作为实际应用,通过使用温度控制的润湿性梯度来证明水滴的聚结。该结果预计将为生化分析,自清洁和微流体等应用提供智能多功能表面的设计和制作提供新的见解。

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