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用于微流控混合和检测的磁珠自组装结构的操控。

Manipulation of self-assembled structures of magnetic beads for microfluidic mixing and assaying.

作者信息

Rida A, Gijs M A M

机构信息

Institute of Microelectronics and Microsystems, Swiss Federal Institute of Technology Lausanne, CH-1015 Lausanne EPFL, Switzerland.

出版信息

Anal Chem. 2004 Nov 1;76(21):6239-46. doi: 10.1021/ac049415j.

Abstract

We present an original concept of manipulation of magnetic microbeads in a microchannel. It is based on the dynamic motion of a self-assembled structure of ferrimagnetic beads that are retained within a microfluidic flow using a local alternating magnetic field. The latter induces a rotational motion of the magnetic particles, thereby strongly enhancing the fluid perfusion through the magnetic structure that behaves as a dynamic random porous medium. The result is a very strong particle-liquid interaction that can be controlled by adjusting the magnetic field frequency and amplitude, as well as the liquid flow rate, and is at the basis of very efficient liquid mixing. The principle is demonstrated using a microfluidic chip made of poly(methyl methacrylate) with integrated soft ferromagnetic plate structures. The latter are part of an electromagnetic circuit and serve to locally apply a magnetic field over the section of the microchannel. Starting from a laminar flow pattern of parallel fluorescein dye and nonfluorescent liquid streams, we demonstrate a 95% mixing efficiency using a mixing length of only 400 microm and at liquid flows of the order of 0.5 cm/s. We anticipate that the intense interaction between the fluid and magnetic particles with functionalized surfaces holds large potential for the development of future bead-based assays.

摘要

我们提出了一种在微通道中操控磁性微珠的原创概念。它基于亚铁磁珠自组装结构的动态运动,这些珠子通过局部交变磁场被保留在微流体流中。后者会引起磁性粒子的旋转运动,从而极大地增强通过表现为动态随机多孔介质的磁性结构的流体灌注。结果是产生了一种非常强的颗粒 - 液体相互作用,这种相互作用可以通过调节磁场频率和幅度以及液体流速来控制,并且是非常高效的液体混合的基础。使用由聚甲基丙烯酸甲酯制成的带有集成软铁磁板结构的微流控芯片演示了该原理。后者是电磁电路的一部分,用于在微通道部分局部施加磁场。从平行的荧光素染料和非荧光液体流的层流模式开始,我们在仅400微米的混合长度和大约0.5厘米/秒的液体流速下展示了95%的混合效率。我们预计,流体与具有功能化表面的磁性粒子之间的强烈相互作用在未来基于珠子的检测发展中具有巨大潜力。

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