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用于多功能三维流体界面操控的磁驱动“毛细管容器”

Magnetic-actuated "capillary container" for versatile three-dimensional fluid interface manipulation.

作者信息

Zhang Yiyuan, Huang Zhandong, Cai Zheren, Ye Yuqing, Li Zheng, Qin Feifei, Xiao Junfeng, Zhang Dongxing, Guo Qiuquan, Song Yanlin, Yang Jun

机构信息

Department of Mechanical and Materials Engineering, University of Western Ontario, London, Ontario N6A 5B9, Canada.

Key Laboratory of Green Printing, Institute of Chemistry, Chinese Academy of Sciences (ICCAS), Beijing Engineering Research Center of Nanomaterials for Green Printing Technology, Beijing National Laboratory for Molecular Sciences (BNLMS), Beijing 100190, P. R. China.

出版信息

Sci Adv. 2021 Aug 18;7(34). doi: 10.1126/sciadv.abi7498. Print 2021 Aug.

Abstract

Fluid interfaces are omnipresent in nature. Engineering the fluid interface is essential to study interfacial processes for basic research and industrial applications. However, it remains challenging to precisely control the fluid interface because of its fluidity and instability. Here, we proposed a magnetic-actuated "capillary container" to realize three-dimensional (3D) fluid interface creation and programmable dynamic manipulation. By wettability modification, 3D fluid interfaces with predesigned sizes and geometries can be constructed in air, water, and oils. Multiple motion modes were realized by adjusting the container's structure and magnetic field. Besides, we demonstrated its feasibility in various fluids by performing selective fluid collection and chemical reaction manipulations. The container can also be encapsulated with an interfacial gelation reaction. Using this process, diverse free-standing 3D membranes were produced, and the dynamic release of riboflavin (vitamin B) was studied. This versatile capillary container will provide a promising platform for open microfluidics, interfacial chemistry, and biomedical engineering.

摘要

流体界面在自然界中无处不在。设计流体界面对于基础研究和工业应用中的界面过程研究至关重要。然而,由于其流动性和不稳定性,精确控制流体界面仍然具有挑战性。在此,我们提出了一种磁驱动的“毛细管容器”,以实现三维(3D)流体界面的创建和可编程动态操纵。通过润湿性改性,可以在空气、水和油中构建具有预先设计尺寸和几何形状的3D流体界面。通过调整容器结构和磁场实现了多种运动模式。此外,我们通过进行选择性流体收集和化学反应操纵证明了其在各种流体中的可行性。该容器还可以通过界面凝胶化反应进行封装。利用这一过程,制备了各种独立的3D膜,并研究了核黄素(维生素B)的动态释放。这种多功能毛细管容器将为开放式微流体、界面化学和生物医学工程提供一个有前景的平台。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/613f/8373135/684833d1309a/abi7498-F1.jpg

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