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旋转电场作用下疏水性表面上的液滴滚动输运:分子动力学研究

Droplet Rolling Transport on Hydrophobic Surfaces Under Rotating Electric Fields: A Molecular Dynamics Study.

作者信息

Liu Wenchuan, Jing Dengwei

机构信息

State Key Laboratory of Multiphase Flow in Power Engineering, Xi'an Jiaotong University, Xi'an 710049, China.

出版信息

Langmuir. 2023 Oct 17;39(41):14660-14669. doi: 10.1021/acs.langmuir.3c01989. Epub 2023 Oct 6.

Abstract

Driving droplets by electric fields is usually achieved by controlling their wettability, and realizing a flexible operation requires complex electrode designs. Here, we show by molecular dynamics methods the droplet transport on hydrophobic surfaces in a rolling manner under a rotating electric field, which provides a simpler and promising way to manipulate droplets. The droplet internal velocity field shows the rolling mode. When the contact angle on the solid surface is 144.4°, the droplet can be transported steadily at a high velocity under the rotating electric field ( = 0.5 V nm, ω = π/20 ps). The droplet center-of-mass velocities and trajectories, deformation degrees, dynamic contact angles, and surface energies were analyzed regarding the electric field strength and rotational angular frequency. Droplet transport with a complex trajectory on a two-dimensional surface is achieved by setting the electric field, which reflects the programmability of the driving method. Nonuniform wettability stripes can assist in controlling droplet trajectories. The droplet transport on the three-dimensional surface is studied, and the critical conditions for the droplet passing through the surface corners and the motion law on the curved surface are obtained. Droplet coalescence has been achieved by surface designs.

摘要

通过电场驱动液滴通常是通过控制其润湿性来实现的,而实现灵活操作需要复杂的电极设计。在此,我们通过分子动力学方法表明,在旋转电场作用下,液滴在疏水表面上以滚动方式传输,这为操纵液滴提供了一种更简单且有前景的方法。液滴内部速度场呈现出滚动模式。当固体表面上的接触角为144.4°时,在旋转电场( = 0.5 V nm,ω = π/20 ps)作用下,液滴能够高速稳定传输。针对电场强度和旋转角频率,分析了液滴质心速度和轨迹、变形程度、动态接触角以及表面能。通过设置电场,在二维表面上实现了具有复杂轨迹的液滴传输,这体现了驱动方法的可编程性。不均匀的润湿性条纹有助于控制液滴轨迹。研究了三维表面上的液滴传输,得出了液滴通过表面拐角的临界条件以及曲面上的运动规律。通过表面设计实现了液滴聚并。

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