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剪切流中的聚合:从碗状糖微载体到自驱动微马达。

Polymerization in Shear Flow: From Bowl-Shaped Glyco-Microcarriers to Self-Propelled Micromotors.

作者信息

Xu Fei, Jing Wenhua, Chen Gaojian, Zhang Zexin

机构信息

Center for Soft Condensed Matter Physics and Interdisciplinary Research, School of Physical Science and Technology, Soochow University, Suzhou 215006, China.

College of Chemistry, Chemical Engineering and Materials Science, Soochow University, Suzhou 215123, China.

出版信息

ACS Macro Lett. 2021 Jan 19;10(1):9-13. doi: 10.1021/acsmacrolett.0c00653. Epub 2020 Dec 7.

Abstract

We report a simple and effective method to synthesize composite bowl-shaped colloidal particles composed of a magnetic bottom and polymer wall. The bowl-shape is determined by the stirring and the resulting centrifugal force acting on the components during the synthesis. By systematically varying the stirring speed, we have found the lower and upper bounds for the bowl formation. Moreover, the size and thickness of the bowl can be tuned by changing the amount of the TPM monomer during synthesis. Functional groups can be easily introduced in the solidifying step through the polymerization of TPM by adding initiators and functional monomers. For example, by copolymerization of glycomonomer with TPM, bowl-shaped particles with biological activity can be obtained. In addition, such composite particles can be further modified to produce micromotors with well-controlled motions.

摘要

我们报道了一种简单有效的方法来合成由磁性底部和聚合物壁组成的复合碗状胶体颗粒。碗状形状由合成过程中的搅拌以及作用于各组分的离心力决定。通过系统地改变搅拌速度,我们找到了碗状形成的下限和上限。此外,在合成过程中通过改变TPM单体的量可以调节碗的尺寸和厚度。在固化步骤中,通过添加引发剂和功能单体使TPM聚合,可以轻松引入官能团。例如,通过糖单体与TPM的共聚,可以获得具有生物活性的碗状颗粒。此外,这种复合颗粒可以进一步改性以制造运动可控的微马达。

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