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由功能前体聚合物制备的 Janus 微凝胶。

Janus microgels produced from functional precursor polymers.

机构信息

School of Engineering and Applied Sciences and Department of Physics, Harvard University, 29 Oxford Street, Cambridge, Massachusetts 01238, USA.

出版信息

Langmuir. 2010 Sep 21;26(18):14842-7. doi: 10.1021/la101868w.

Abstract

Micrometer-sized Janus particles of many kinds can be formed using droplet microfluidics, but in existing methods, the microfluidic templating is strongly coupled to the material synthesis, since droplet solidification occurs through rapid polymerization right after droplet formation. This circumstance limits independent control of the material properties and the morphology of the resultant particles. In this paper, we demonstrate a microfluidic technique to produce functional Janus microgels from prefabricated, cross-linkable precursor polymers. This approach separates the polymer synthesis from the particle gelation, thus allowing the microfluidic droplet templating and the functionalization of the matrix polymer to be performed and controlled in two independent steps. We use microfluidic devices to emulsify semidilute solutions of cross-linkable, chemically modified or unmodified poly(N-isopropylacrylamide) precursors and solidify the drops via polymer-analogous gelation. The resultant microgel particles exhibit two distinguishable halves which contain most of the modified precursors, and the unmodified matrix polymer separates these materials. The spatial distribution of the modified precursors across the particles can be controlled by the flow rates during the microfluidic experiments. We also form hollow microcapsules with two different sides (Janus shells) using double emulsion droplets as templates, and we produce Janus microgels that are loaded with a ferromagnetic additive which allows remote actuation of the microgels.

摘要

使用液滴微流控技术可以形成多种微米级的 Janus 粒子,但在现有的方法中,微流控模板与材料合成强烈耦合,因为液滴形成后会迅速聚合而导致液滴固化。这种情况限制了对材料性质和所得粒子形态的独立控制。在本文中,我们展示了一种使用预制可交联前体聚合物从生产功能性 Janus 微凝胶的微流控技术。这种方法将聚合物合成与粒子凝胶分离,从而允许在两个独立的步骤中进行微流控液滴模板和基质聚合物的功能化。我们使用微流控装置乳化交联的、化学修饰或未修饰的聚(N-异丙基丙烯酰胺)前体的半稀释溶液,并通过类似聚合物的凝胶化使液滴固化。所得的微凝胶粒子表现出两个明显的半部分,其中包含大部分修饰的前体,而未修饰的基质聚合物将这些材料分开。通过微流控实验中的流速可以控制修饰前体在粒子中的空间分布。我们还使用双乳液液滴作为模板形成具有两种不同侧面(Janus 壳)的中空微胶囊,并制备负载铁磁添加剂的 Janus 微凝胶,这允许对微凝胶进行远程驱动。

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