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

被引:72
|
作者
Banuprasad, Theneyur Narayanaswamy [1 ]
Vinay, Thamarasseril Vijayan [1 ]
Subash, Cherumannil Karumuthil [1 ]
Varghese, Soney [1 ]
George, Sajan D. [2 ]
Varanakkottu, Subramanyan Namboodiri [1 ]
机构
[1] Natl Inst Technol, Sch Nano Sci & Technol, Calicut 673601, Kerala, India
[2] Manipal Univ, Dept Atom & Mol Phys, Ctr Appl Nanosci, Manipal 576104, Karnataka, India
关键词
wettability gradient; PNIPAAm layer; uphill transport; droplet transport; stimuli-responsive; temperature gradient; LIQUID-DROP; MOTION; MICROFLUIDICS; SUPERHYDROPHILICITY; SUPERHYDROPHOBICITY; MANIPULATION;
D O I
10.1021/acsami.7b07451
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
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.
引用
收藏
页码:28046 / 28054
页数:9
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