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用于废水处理的气泡驱动微马达的微流体制备

Microfluidic Fabrication of Bubble-Propelled Micromotors for Wastewater Treatment.

作者信息

Ren Meng, Guo Weilin, Guo Huaisu, Ren Xiaohua

机构信息

School of Water Conservancy and Environment , University of Jinan , Jinan 250022 , China.

出版信息

ACS Appl Mater Interfaces. 2019 Jun 26;11(25):22761-22767. doi: 10.1021/acsami.9b05925. Epub 2019 Jun 15.

Abstract

Bubble-propelled micromotors with controllable shapes and sizes have been developed by a microfluidic method, which serves for effective wastewater treatment. Using the emulsion from microfluidics as the template, monodisperse micromotors can be fabricated in large quantities based on phase separation and UV-induced monomer polymerization. By adjusting the volume ratio of the two immiscible oils (ethoxylated trimethylolpropane triacrylate/paraffin oil) in the initial emulsion, the geometry of the resulting micromotor can be precisely controlled from nearly spherical, hemispherical to crescent-shaped. The size of the micromotor can be manipulated by varying the fluid flow parameters. In addition, by incorporating functional nanoparticles into the asymmetric structure, the micromotor can be functionalized flexibly for water remediation. In this research, FeO and MnO nanoparticles were successfully loaded on Janus micromotors. FeO nanoparticles can act as catalysts for pollutant degradation and also control the movement direction of micromotors. MnO nanoparticles on the concave of the micromotor catalyzed HO to produce bubble propulsion motion in solution, which further enhanced the degradation of pollutants. Consequently, the obtained micromotor demonstrated effective degradation of methylene blue and can be easily recovered by magnets. Furthermore, this simple and flexible strategy offers a synthetic way for anisotropic Janus particles, which will broaden their potential application.

摘要

通过微流控方法开发出了形状和尺寸可控的气泡驱动微马达,其可用于高效废水处理。以微流控乳液为模板,基于相分离和紫外线诱导的单体聚合反应,可大量制备单分散微马达。通过调节初始乳液中两种不混溶油(乙氧基化三羟甲基丙烷三丙烯酸酯/石蜡油)的体积比,所得微马达的几何形状可从近球形、半球形精确控制为月牙形。微马达的尺寸可通过改变流体流动参数来操控。此外,通过将功能纳米粒子引入不对称结构,微马达可灵活功能化以用于水修复。在本研究中,FeO和MnO纳米粒子成功负载在了双面微马达上。FeO纳米粒子可作为污染物降解的催化剂,还能控制微马达的运动方向。微马达凹面的MnO纳米粒子催化H₂O₂在溶液中产生气泡推进运动,进一步增强了污染物的降解。因此,所得微马达展现出对亚甲基蓝的有效降解,并且可通过磁铁轻松回收。此外,这种简单灵活的策略为各向异性的双面粒子提供了一种合成方法,这将拓宽其潜在应用。

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