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Magnetic track array for efficient bead capture in microchannels

机译:磁道阵列可有效捕获微通道中的磁珠

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Magnetism-based microsystems, as those dedicated to immunoaffinity separations or (bio)chemical reactions, take benefit of the large surface area-to-volume ratio provided by the immobilized magnetic beads, thus increasing the sensitivity of the analysis. As the sensitivity is directly linked to the efficiency of the magnetic bead capture, this paper presents a simple method to enhance the capture in a microchannel. Considering a microchannel surrounded by two rectangular permanent magnets of different length (L m = 2, 5, 10 mm) placed in attraction, it is shown that the amount of trapped beads is limited by the magnetic forces mainly located at the magnet edges. To overcome this limitation, a polyethylene terephthalate (PET) microchip with an integrated magnetic track array has been prototyped by laser photo-ablation. The magnetic force is therefore distributed all along the magnet length. It results in a multi-plug bead capture, observed by microscope imaging, with a magnetic force value locally enhanced. The relative amount of beads, and so the specific binding surface for further immunoassays, presents a significant increase of 300% for the largest magnets. The influence of the track geometry and relative permeability on the magnetic force was studied by numerical simulations, for the microchip operating with 2-mm-long magnets.
机译:基于磁性的微系统,如那些专门用于免疫亲和分离或(生物)化学反应的系统,可利用固定磁珠提供的大表面积体积比,从而提高了分析的灵敏度。由于灵敏度与磁珠捕获效率直接相关,因此本文提出了一种增强微通道捕获的简单方法。考虑到一个微通道被两个不同长度(L m = 2、5、10 mm)的矩形永久磁铁所吸引,它们被吸引,这表明被捕获的磁珠数量受到主要位于磁珠上的磁力的限制。磁铁边缘。为了克服此限制,已经通过激光光烧蚀对具有集成磁道阵列的聚对苯二甲酸乙二醇酯(PET)微芯片进行了原型设计。因此,磁力沿磁体的整个长度分布。通过显微镜成像可观察到多塞子磁珠捕获,并局部增强了磁力值。珠子的相对数量,以及用于进一步免疫测定的特异性结合表面,对于最大的磁体而言,显着增加了300%。通过数值模拟研究了轨道几何形状和相对磁导率对磁力的影响,对于使用2毫米长的磁体工作的微芯片。

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