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在具有各向异性磁通导向阵列的微流控芯片中进行流正交的磁珠振荡。

Flow-orthogonal bead oscillation in a microfluidic chip with a magnetic anisotropic flux-guide array.

机构信息

Department of Mechanical Engineering, Micro- and NanoScale Engineering, Eindhoven University of Technology, Eindhoven, The Netherlands.

出版信息

Biomed Microdevices. 2011 Apr;13(2):353-9. doi: 10.1007/s10544-010-9503-5.

Abstract

A new concept for the manipulation of superparamagnetic beads inside a microfluidic chip is presented in this paper. The concept allows for bead actuation orthogonal to the flow direction inside a microchannel. Basic manipulation functionalities were studied by means of finite element simulations and results were oval-shaped steady state oscillations with bead velocities up to 500 μm/s. The width of the trajectory could be controlled by prescribing external field rotation. Successful verification experiments were performed on a prototype chip fabricated with excimer laser ablation in polycarbonate and electroforming of nickel flux-guides. Bead velocities up to 450 μm/s were measured in a 75 μm wide channel. By prescribing the currents in the external quadrupole magnet, the shape of the bead trajectory could be controlled.

摘要

本文提出了一种在微流控芯片内操纵超顺磁珠的新概念。该概念允许在微通道内沿流道方向正交地驱动磁珠。通过有限元模拟研究了基本的操作功能,结果得到了具有高达 500μm/s 磁珠速度的椭圆形稳态振荡。通过规定外部磁场的旋转,可以控制轨迹的宽度。在使用准分子激光烧蚀聚碳酸酯和电铸镍磁通引导器制造的原型芯片上进行了成功的验证实验。在 75μm 宽的通道中测量到高达 450μm/s 的磁珠速度。通过规定外部四极磁铁中的电流,可以控制磁珠轨迹的形状。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9cca/3051104/34582f7a9654/10544_2010_9503_Fig1_HTML.jpg

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