Velocity‐Switched Droplet Rebound Direction on Anisotropic Superhydrophobic Surfaces

Author:

Li Peiliu123,Zhan Fei4,Wang Lei15ORCID

Affiliation:

1. Beijing Key Lab of Cryo‐biomedical Engineering and Key Lab of Cryogenics Technical Institute of Physics and Chemistry Chinese Academy of Sciences Beijing 100190 China

2. Biomechanics and Biomaterials Laboratory Department of Mechanics School of Aerospace Engineering Beijing Institute of Technology Beijing 100081 China

3. State Key Laboratory of Nonlinear Mechanics Institute of Mechanics Chinese Academy of Sciences Beijing 100190 China

4. School of Electrical and Electronic Engineering Shijiazhuang Tiedao University Shijiazhuang 050043 China

5. Beijing Key Laboratory of Lignocellulosic Chemistry Beijing Forestry University Beijing 100083 China

Abstract

AbstractDroplet well‐controlled directional motion being an essential function has attracted much interest in academic and industrial applications, such as self‐cleaning, micro‐/nano‐electro‐mechanical systems, drug delivery, and heat‐transferring. Conventional understanding has it that a droplet impacted on an anisotropic surface tends to bounce along the microstructural direction, which is mainly dictated by surface properties rather than initial conditions. In contrast to previous findings, it demonstrates that the direction of a droplet's rebound on an anisotropic surface can be switched by designing the initial impacting velocity. With an increase in impacting height from 2 to 10 cm, the droplet successively shows a backward, vertical, and forward motion on anisotropic surfaces. Theoretical demonstrations establish that the transition of droplet bouncing on the anisotropic surface is related to its dynamic wettability during impacting process. Characterized by the liquid‐solid interaction, it is demonstrated that the contact state at small and large impacting heights induces an opposite resultant force in microstructures. Furthermore, energy balance analysis reveals that the energy conversion efficiency of backward motion is almost three times as that of traditional bouncing. This work, including experiments, theoretical models, and energy balance analysis provides insight view in droplet motions on the anisotropic surfaces and opens a new way for the droplet transport.

Funder

National Natural Science Foundation of China

Publisher

Wiley

Subject

Biomaterials,Biotechnology,General Materials Science,General Chemistry

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