Son ChangHee, Ji BingQiang, Park JunKyu, Feng Jie, Kim Seok
Department of Mechanical Science and Engineering, University of Illinois at Urbana-Champaign, Urbana, IL 61801, USA.
Department of Mechanical Engineering, Pohang University of Science and Technology, Pohang 37673, Korea.
Micromachines (Basel). 2021 Mar 19;12(3):325. doi: 10.3390/mi12030325.
A water droplet dispensed on a superhydrophobic ratchet surface is formed into an asymmetric shape, which creates a Laplace pressure gradient due to the contact angle difference between two sides. This work presents a magnetically actuated superhydrophobic ratchet surface composed of nanostructured black silicon strips on elastomer ridges. Uniformly magnetized NdFeB layers sputtered under the black silicon strips enable an external magnetic field to tilt the black silicon strips and form a superhydrophobic ratchet surface. Due to the dynamically controllable Laplace pressure gradient, a water droplet on the reported ratchet surface experiences different forces on two sides, which are explored in this work. Here, the detailed fabrication procedure and the related magnetomechanical model are provided. In addition, the resultant asymmetric spreading of a water droplet is studied. Finally, droplet impact characteristics are investigated in three different behaviors of deposition, rebound, and penetration depending on the impact speed. The findings in this work are exploitable for further droplet manipulation studies based on a dynamically controllable superhydrophobic ratchet surface.
滴落在超疏水棘轮表面的水滴会形成不对称形状,由于两侧接触角的差异,会产生拉普拉斯压力梯度。这项工作展示了一种由弹性体脊上的纳米结构黑硅条组成的磁驱动超疏水棘轮表面。在黑硅条下方溅射的均匀磁化钕铁硼层使外部磁场能够倾斜黑硅条并形成超疏水棘轮表面。由于拉普拉斯压力梯度是动态可控的,所报道的棘轮表面上的水滴在两侧受到不同的力,本文对此进行了探究。这里提供了详细的制造过程和相关的磁机械模型。此外,还研究了水滴产生的不对称铺展情况。最后,根据撞击速度,研究了水滴在沉积、反弹和穿透三种不同行为下的撞击特性。这项工作中的发现可用于基于动态可控超疏水棘轮表面的进一步液滴操纵研究。