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使用新型微流控装置可控形状地生产可生物降解的海藻酸钙凝胶微粒。

Shape-controlled production of biodegradable calcium alginate gel microparticles using a novel microfluidic device.

作者信息

Liu Kan, Ding Hui-Jiang, Liu Jing, Chen Yong, Zhao Xing-Zhong

机构信息

Department of Physics, School of Physics, and Center of Nanoscience and Nanotechnology, Wuhan University, Wuhan 430072, China.

出版信息

Langmuir. 2006 Oct 24;22(22):9453-7. doi: 10.1021/la061729+.

Abstract

In this paper we describe a novel method of manufacturing shape-controlled calcium alginate gel microparticles in a microfluidic device. Both manufacturing shape-controlled microparticles and synthesizing hydrogel microparticles could be performed simultaneously in the microfluidic device. The novel microfluidic device comprised of two individual flow-focusing channels and a synthesizing channel was successfully applied as a continuous microfluidic reactor to synthesize gel microparticles with size and shape control. By passive control based on the microchannel geometric confinement and liquid-phase flow rates, we succeeded in producing monodisperse sodium alginate microparticles with diverse shapes (such as plugs, disks, microspheres, rods, and threads) in the flow-focusing channels of the microfluidic device. The shape and size of the sodium alginate microparticles could be tuned by adjusting the flow rates of the various streams. Further stages of the chemical reaction could be initiated by mixing sodium alginate microparticles and calcium chloride (CaCl2) solution in the synthesizing channel. The shapes of the sodium alginate microparticles could be permanently preserved by the synthesis of calcium alginate gel microparticles. The preparation conditions of size- and shape-controlled calcium alginate microparticles and influence factors were studied.

摘要

在本文中,我们描述了一种在微流控装置中制造形状可控的海藻酸钙凝胶微粒的新方法。在微流控装置中,既可以制造形状可控的微粒,又能同时合成水凝胶微粒。由两个独立的流动聚焦通道和一个合成通道组成的新型微流控装置成功用作连续微流控反应器,以合成尺寸和形状可控的凝胶微粒。通过基于微通道几何限制和液相流速的被动控制,我们成功在微流控装置的流动聚焦通道中制备出了具有多种形状(如栓塞、圆盘、微球、棒和线)的单分散海藻酸钠微粒。海藻酸钠微粒的形状和尺寸可以通过调节各种流体的流速来调整。通过在合成通道中将海藻酸钠微粒与氯化钙(CaCl₂)溶液混合,可以引发进一步的化学反应阶段。海藻酸钙凝胶微粒的合成可使海藻酸钠微粒的形状永久保持。研究了尺寸和形状可控的海藻酸钙微粒的制备条件及影响因素。

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