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具有含催化剂液芯和壳层的水凝胶微马达。

Hydrogel micromotors with catalyst-containing liquid core and shell.

作者信息

Zhu Hong, Nawar Saraf, Werner Jörg G, Liu Jinrun, Huang GaoShan, Mei YongFeng, Weitz David A, Solovev Alexander A

机构信息

Department of Materials Science, 220 Handan Road, Fudan University, Shanghai 200433, People's Republic of China.

出版信息

J Phys Condens Matter. 2019 May 29;31(21):214004. doi: 10.1088/1361-648X/ab0822. Epub 2019 Feb 19.

Abstract

Methacrylic anhydride-derived hydrogel microcapsules have unique properties, including reversibly tunable permeation, purification, and separation of dissolved molecular species. Endowing these dynamic encapsulant systems with autonomous motion will significantly enhance their efficiency and applicability. Here, hydrogel micromotors are realized using complex water-in-oil-in-water double emulsion drops and oil-in-water emulsion drops from glass capillary microfluidics and subsequent photopolymerization. Three hydrogel micromotor strategies are explored: microcapsules with thin shells and liquid cores with dispersed catalytic Pt nanoparticles, as well as water-cored microcapsules and homogeneous microparticles selectively coated with Ti/Pt catalytic layers. Autonomous motion of hydrogel particles and capsules is realized in hydrogen peroxide solutions, where generated oxygen microbubbles propel the dynamically responsive micromotors. The micromotors are balanced by weight, buoyancy, lateral capillary forces and show specific autonomous behaviours that significantly extend short range dynamic responses of hydrogels. Drop-based microfluidics represent a paradigm shift in the integration of multifunctional subsystems and high-throughput design of chemical micromachines in reasonable quantities towards their desired biomedical, environmental and flow/diffusion microreactor applications.

摘要

甲基丙烯酸酐衍生的水凝胶微胶囊具有独特的性能,包括对溶解分子物种的可逆可调渗透、纯化和分离。赋予这些动态封装系统自主运动将显著提高其效率和适用性。在此,利用玻璃毛细管微流控技术制备的复杂水包油包水双乳液滴和水包油乳液滴以及随后的光聚合反应实现了水凝胶微马达。探索了三种水凝胶微马达策略:具有薄壳和含有分散催化铂纳米颗粒的液芯的微胶囊,以及选择性涂覆有钛/铂催化层的水芯微胶囊和均质微粒。水凝胶颗粒和胶囊在过氧化氢溶液中实现自主运动,其中产生的氧微气泡推动动态响应的微马达。微马达通过重量、浮力、横向毛细作用力达到平衡,并表现出特定的自主行为,显著扩展了水凝胶的短程动态响应。基于液滴的微流控技术代表了多功能子系统集成和化学微机器高通量设计的范式转变,能够以合理的数量实现其所需的生物医学、环境和流动/扩散微反应器应用。

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