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利用微滴微流控技术按需一步合成单分散功能性聚合物微球。

On-demand one-step synthesis of monodisperse functional polymeric microspheres with droplet microfluidics.

作者信息

Yu Xu, Cheng Gong, Zhou Ming-Da, Zheng Si-Yang

出版信息

Langmuir. 2015 Apr 7;31(13):3982-92. doi: 10.1021/acs.langmuir.5b00617. Epub 2015 Mar 26.

DOI:10.1021/acs.langmuir.5b00617
PMID:25782525
Abstract

A simple and robust method for one-step synthesis of monodisperse functional polymeric microspheres was established by generation of reversed microemulsion droplets in aqueous phase inside microfluidic chips and controlled evaporation of the organic solvent. Using this method, water-soluble nanomaterials can be easily encapsulated into biodegradable Poly(D,L-lactic-co-glycolic acid) (PLGA) to form functional microspheres. By controlling the flow rate of microemulsion phase, PLGA polymeric microspheres with narrow size distribution and diameters in the range of ∼50-100 μm were obtained. As a demonstration of the versatility of the approach, high-quality fluorescent CdTe:Zn(2+) quantum dots (QDs) of various emission spectra, superparamagnetic Fe3O4 nanoparticles, and water-soluble carbon nanotubes (CNTs) were used to synthesize fluorescent PLGA@QDs, magnetic PLGA@Fe3O4, and PLGA@CNTs polymeric microspheres, respectively. In order to show specific applications, the PLGA@Fe3O4 were modified with polydopamine (PDA), and then the silver nanoparticles grew on the surfaces of the PLGA@Fe3O4@PDA polymeric microspheres by reducting the Ag(+) to Ag(0). The as-prepared PLGA@Fe3O4@PDA-Ag microspheres showed a highly efficient catalytic reduction of the 4-nitrophenol, a highly toxic substance. The monodisperse uniform functional PLGA polymeric microspheres can potentially be critically important for multiple biomedical applications.

摘要

通过在微流控芯片内的水相中生成反向微乳液滴并控制有机溶剂的蒸发,建立了一种简单且稳健的一步法合成单分散功能性聚合物微球的方法。使用该方法,水溶性纳米材料可以很容易地封装到可生物降解的聚(D,L-乳酸-共-乙醇酸)(PLGA)中,形成功能性微球。通过控制微乳液相的流速,获得了尺寸分布窄、直径在50-100μm范围内的PLGA聚合物微球。作为该方法通用性的证明,分别使用具有各种发射光谱的高质量荧光CdTe:Zn(2+)量子点(QDs)、超顺磁性Fe3O4纳米颗粒和水溶性碳纳米管(CNTs)合成了荧光PLGA@QDs、磁性PLGA@Fe3O4和PLGA@CNTs聚合物微球。为了展示具体应用,用聚多巴胺(PDA)对PLGA@Fe3O4进行修饰,然后通过将Ag(+)还原为Ag(0),使银纳米颗粒在PLGA@Fe3O4@PDA聚合物微球表面生长。所制备的PLGA@Fe3O4@PDA-Ag微球对剧毒物质4-硝基苯酚表现出高效的催化还原作用。单分散均匀的功能性PLGA聚合物微球对于多种生物医学应用可能至关重要。

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