An experimental and numerical study of microfluidic preparation of chitosan nanoparticle

Sara Movahedi, Farshad Bahramian, Fatemeh Ghorbani-Bidkorbeh
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Abstract

Nanoparticle characteristics play a significant role in determining to proper nanocarrier for drug delivery. The improvement of cell response can obtain by simply manipulating the size of the implemented nanocarrier. This study aims to optimize nanoparticle characteristics (size and the polydispersity of chitosan, a common polymer, for further investigation. We used both numerical and experimental studies for this purpose. The coaxial microfluidic device was fabricated for the semi-automatic synthesis of nanoparticles. A real three-dimensional model of the chip was modeled in COMSOL Multiphysics (version 6.0) to evaluate the optimum mixing condition. In the result, the nanoparticle synthesized via microfluidic had a hydrodynamic size of 314 nm with narrow dispersity presented by low polydispersity. Consequently, the correlation between the nanoparticle's size, flow ratio, and mixing condition was discussed briefly.
微流控制备壳聚糖纳米颗粒的实验与数值研究
纳米颗粒的特性对选择合适的纳米药物载体起着至关重要的作用。细胞反应的改善可以通过简单地操纵纳米载体的大小来实现。本研究旨在优化壳聚糖(一种常见的聚合物)的纳米颗粒特性(尺寸和多分散性),为进一步的研究做准备。为此,我们使用了数值和实验研究。研制了同轴微流控装置,用于纳米颗粒的半自动合成。在COMSOL Multiphysics(6.0)软件中建立了芯片的真实三维模型,以评估最佳混合条件。结果表明,微流控合成的纳米颗粒流体力学尺寸为314 nm,分散性较窄,多分散性较低。在此基础上,简要讨论了纳米颗粒粒径、流动比和混合条件之间的关系。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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