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作 者:Weijian Liu Feng Guan Fulin Zhang Chenrui Wang Wei Zheng Lu Zhai Zhaohua Lin Chunbao Liu
机构地区:[1]AVIC Shenyang Aircraft Corporation,Shenyang,110000,China [2]School of Mechanical and Aerospace Engineering,Jilin University,Changchun,130022,China
出 处:《Journal of Bionic Engineering》2024年第3期1375-1387,共13页仿生工程学报(英文版)
基 金:supported by Key Scientific and Technological Projects of Jilin Province(20220201026GX,20220401083YY);Fundamental Research Funds for the Central Universities,Jilin University(2022-JCXK-15).
摘 要:Surface-tension-confined microfluidic devices are platforms for manipulating 2D droplets based on patterned surfaces with special wettability.They have great potential for various applications,but are still in the early stages of development and face some challenges that need to be addressed.This study,inspired by the Wenzel and slippery transition of rose petal,develops a Patterned Oil-triggered Wenzel-slippery Surface(POWS)to examine the microfluidic devices.A laser-chemical composite method is established to fabricate POWSs,which take rose-petal-like microstructures as wettability pattern and a superamphiphobic surface as the background.The prepared POWSs switched between high adhesion superhydrophobic state and the slippery liquid-infused surface state through adding or removing the lubricant oil.In the high adhesion superhydrophobic state,the droplets can be sticked on the surface.In the slippery liquid-infused state,the droplet can slide along the wettability pattern as the designed route.A POWS-based droplet reactor is further constructed,on which,the droplets can be remotely controlled to move,mix and react,as required.Such a POWS,which manipulates droplets with surface tension controlled by the switchable wettability patterns,would be a promising candidate to construct multiple surface-tension-confined microfluidic devices.In addition,the fabrication technique and design principle proposed here may aid the development of various field related to the bio-inspired surfaces,such as water collection,desalination and high throughput analysis,etc.
关 键 词:BIOMATERIALS Bio-inspired surface Oil-triggered wenzel-slippery transition SUPERHYDROPHOBICITY Femtosecondlaser
分 类 号:TG146.21[一般工业技术—材料科学与工程] Q811[金属学及工艺—金属材料]
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