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生物医学微器件:使用微流体系统合成氧化铁纳米颗粒

Biomedical microdevices synthesis of iron oxide nanoparticles using a microfluidic system.

作者信息

Lee Wen-Bin, Weng Chen-Hsun, Cheng Fong-Yu, Yeh Chen-Sheng, Lei Huan-Yao, Lee Gwo-Bin

机构信息

Department of Engineering Science, National Cheng Kung University, Tainan, 701, Taiwan.

出版信息

Biomed Microdevices. 2009 Feb;11(1):161-71. doi: 10.1007/s10544-008-9221-4.

Abstract

The preparation of nanoparticles is essential in the application of many nanotechnologies and various preparation methods have been explored in the previous decades. Among them, iron oxide nanoparticles have been widely investigated in applications ranging from bio-imaging to bio-sensing due to their unique magnetic properties. Recently, microfluidic systems have been utilized for synthesis of nanoparticles, which have the advantages of automation, well-controlled reactions, and a high particle uniformity. In this study, a new microfluidic system capable of mixing, transporting and reacting was developed for the synthesis of iron oxide nanoparticles. It allowed for a rapid and efficient approach to accelerate and automate the synthesis of the iron oxide nanoparticles as compared with traditional methods. The microfluidic system uses micro-electro-mechanical-system technologies to integrate a new double-loop micromixer, two micropumps, and a microvalve on a single chip. When compared with large-scale synthesis systems with commonly-observed particle aggregation issues, successful synthesis of dispersed and uniform iron oxide nanoparticles has been observed within a shorter period of time (15 min). It was found that the size distribution of these iron oxide nanoparticles is superior to that of the large-scale systems without requiring any extra additives or heating. The size distribution had a variation of 16%. This is much lower than a comparable large-scale system (34%). The development of this microfluidic system is promising for the synthesis of nanoparticles for many future biomedical applications.

摘要

纳米颗粒的制备在许多纳米技术应用中至关重要,并且在过去几十年中人们探索了各种制备方法。其中,由于其独特的磁性,氧化铁纳米颗粒在从生物成像到生物传感等广泛应用中受到了广泛研究。最近,微流控系统已被用于纳米颗粒的合成,该系统具有自动化、反应可控性好以及颗粒均匀性高的优点。在本研究中,开发了一种能够进行混合、运输和反应的新型微流控系统用于合成氧化铁纳米颗粒。与传统方法相比,它提供了一种快速有效的方法来加速和自动化氧化铁纳米颗粒的合成。该微流控系统利用微机电系统技术,在单个芯片上集成了一个新型双回路微混合器、两个微泵和一个微阀。与通常存在颗粒聚集问题的大规模合成系统相比,在较短时间(15分钟)内成功合成了分散且均匀的氧化铁纳米颗粒。结果发现,这些氧化铁纳米颗粒的尺寸分布优于大规模系统,且无需任何额外添加剂或加热。尺寸分布的变化为16%。这远低于可比的大规模系统(34%)。这种微流控系统的开发对于未来许多生物医学应用中的纳米颗粒合成具有广阔前景。

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