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Biaxially Morphing Droplet Shape by an Active Surface
Author(s) -
Wang Ding,
Liu Yingzhi,
Sridhar Sreepathy,
Li Yifan,
McHale Glen,
Lu Haibao,
Yu Ziyi,
Wang Steven,
Xu Ben Bin
Publication year - 2021
Publication title -
advanced materials interfaces
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.671
H-Index - 65
ISSN - 2196-7350
DOI - 10.1002/admi.202001199
Subject(s) - materials science , morphing , drop (telecommunication) , wetting , surface finish , surface roughness , nanotechnology , drop impact , anisotropy , composite material , mechanical engineering , optics , computer science , physics , engineering , computer vision
Drop morphology can be manipulated by designing localized solid/liquid interactions to create a favorable interfacial energy equilibrium. A topographical surface with hierarchical roughness can be harnessed to generate complex drop morphologies, enhance uniaxial and anisotropic spreading, in a designable fashion. Here, using an active surface is proposed with a responsive roughness (wrinkle patterns) under uniaxial compression/stretching, to morph droplet shape biaxially in a continuous and reversible manner. The keys to achieve biaxial drop shaping are the in‐plane confinement from lattice hole patterns and the programmable formation of roughness, to pin and guide contact line movement in both in plane directions. The complex interplay between wetting and the patterns is elucidated by both experiments and numerical analysis. The results enrich the current understanding of shaping droplets by managing the contact line pinning/movement on an engineered elastic substrate, and providing insights for emerging applications in the areas such as droplet emicrofluidics, liquid robotics, ink‐jet printing, 3D printing and healthcare.
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