Department of Aeronautics and Astronautics, National Cheng-Kung University, Tainan, Taiwan.
Electrophoresis. 2009 Dec;30(24):4179-86. doi: 10.1002/elps.200900400.
This paper presents a novel simple micromixer based on stable water suspensions of magnetic nanoparticles (i.e. ferrofluids). The micromixer chip is built using standard microfabrication and simple soft lithography, and the design can be incorporated as a subsystem into any chemical microreactor or a miniaturized biological sensor. An electromagnet driven by an AC power source is used to induce transient interactive flows between a ferrofluid and Rhodamine B. The alternative magnetic field causes the ferrofluid to expand significantly and uniformly toward Rhodamine B, associated with a great number of extremely fine fingering structures on the interface in the upstream and downstream regions of the microchannel. These pronounced fingering patterns, which have not been observed by other active mixing methods utilizing only magnetic force, increase the mixing interfacial length dramatically. Along with the dominant diffusion effects occurring around the circumferential regions of the fine finger structures, the mixing efficiency increases significantly. The miscible fingering instabilities are observed and applied in the microfluidics for the first time. This work is carried with a view to developing functionalized ferrofluids that can be used as sensitive pathogen detectors and the present experimental results demonstrate that the proposed micromixer has excellent mixing capabilities. The mixing efficiency can be as high as 95% within 2.0 s and a distance of 3.0 mm from the inlet of the mixing channel, when the applied peak magnetic field is higher than 29.2 Oe and frequency ranges from 45 to 300 Hz.
本文提出了一种基于稳定的磁性纳米粒子(即磁流体)水悬浮液的新型简单微混合器。微混合器芯片采用标准微加工和简单的软光刻技术制造,设计可以作为子系统集成到任何化学微反应器或小型化生物传感器中。交流电源驱动的电磁铁用于诱导磁流体和罗丹明 B 之间的瞬态相互作用流。交变磁场会导致磁流体显著且均匀地向罗丹明 B 扩展,与微通道上下游区域的界面上形成大量非常精细的指状结构有关。这些明显的指状图案是其他仅利用磁力的主动混合方法所没有观察到的,大大增加了混合界面长度。随着精细指状结构圆周区域周围发生的主导扩散效应,混合效率显著提高。首次在微流控中观察到可混指状不稳定性并将其应用于微流控中。这项工作旨在开发可作为敏感病原体探测器的功能化磁流体,目前的实验结果表明,所提出的微混合器具有出色的混合能力。当施加的峰值磁场高于 29.2 Oe 且频率范围为 45 至 300 Hz 时,在混合通道入口 2.0 s 内和 3.0 mm 距离内,混合效率可高达 95%。