Eine Plattform für die Wissenschaft: Bauingenieurwesen, Architektur und Urbanistik
3D Bioinspired Microstructures for Switchable Repellency in both Air and Liquid
In addition to superhydrophobicity/superoleophobicity, surfaces with switchable water/oil repellency have also aroused considerable attention because of their potential values in microreactors, sensors, and microfluidics. Nevertheless, almost all those as‐prepared surfaces are only applicable for liquids with higher surface tension (γ > 25.0 mN m−1) in air. In this work, inspired by some natural models, such as lotus leaf, springtail skin, and filefish skin, switchable repellency for liquids (γ = 12.0–72.8 mN m−1) in both air and liquid is realized via employing 3D deformable multiply re‐entrant microstructures. Herein, the microstructures are fabricated by a two‐photon polymerization based 3D printing technique and the reversible deformation is elaborately tuned by evaporation‐induced bending and immersion‐induced fast recovery (within 30 s). Based on 3D controlled microstructural architectures, this work offers an insightful explanation of repellency/penetration behavior at any three‐phase interface and starts some novel ideas for manipulating opposite repellency by designing/fabricating stimuli‐responsive microstructures.
3D Bioinspired Microstructures for Switchable Repellency in both Air and Liquid
In addition to superhydrophobicity/superoleophobicity, surfaces with switchable water/oil repellency have also aroused considerable attention because of their potential values in microreactors, sensors, and microfluidics. Nevertheless, almost all those as‐prepared surfaces are only applicable for liquids with higher surface tension (γ > 25.0 mN m−1) in air. In this work, inspired by some natural models, such as lotus leaf, springtail skin, and filefish skin, switchable repellency for liquids (γ = 12.0–72.8 mN m−1) in both air and liquid is realized via employing 3D deformable multiply re‐entrant microstructures. Herein, the microstructures are fabricated by a two‐photon polymerization based 3D printing technique and the reversible deformation is elaborately tuned by evaporation‐induced bending and immersion‐induced fast recovery (within 30 s). Based on 3D controlled microstructural architectures, this work offers an insightful explanation of repellency/penetration behavior at any three‐phase interface and starts some novel ideas for manipulating opposite repellency by designing/fabricating stimuli‐responsive microstructures.
3D Bioinspired Microstructures for Switchable Repellency in both Air and Liquid
Liu, Xiaojiang (Autor:in) / Gu, Hongcheng (Autor:in) / Ding, Haibo (Autor:in) / Du, Xin (Autor:in) / Wei, Mengxiao (Autor:in) / Chen, Qiang (Autor:in) / Gu, Zhongze (Autor:in)
Advanced Science ; 7
01.10.2020
7 pages
Aufsatz (Zeitschrift)
Elektronische Ressource
Englisch
Bioinspired Surfaces with Switchable Adhesion
British Library Online Contents | 2007
|Switchable Underwater Adhesion by Deformable Cupped Microstructures
DataCite | 2020
|Wiley | 2024
|Wiley | 2024
|Structure and oil repellency:Textiles with liquid repellency to hexane
British Library Online Contents | 2008
|