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Reusable Embedded Microcoils for Magnetic Nano-Beads Trapping in Microfluidics: Magnetic Simulation and Experiments

机译:可重复使用的嵌入式微线圈用于微流控中的磁性纳米珠捕获:磁性模拟和实验

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摘要

In this study, a microfluidic chip with integrated coil was designed and fabricated for the aim of effectively trapping magnetic nanobeads (Adembeads , 300 nm) and measuring the chip’s temperature during the working time. In addition, a reversible technique of bonding Polydimethylsiloxane (PDMS) channels was presented. This bonding process used a coating layer of CYTOP product as a protection, insulation and low-adhesion layer. The reversible packaging technique allows the bottom substrate to be reused, possibly equipped with sensors, and to use a disposable microchannels network. The FE method was employed to calculate the magnetic field and power consumption by the ANSYS version 12.1 software. Merit factors were defined in order to synthetically represent the ability of the simulated coil to trap beads for a unit power consumption, i.e. a given heat generation. The simulation results propose a new approach to optimize the design criteria in fabricating planar microcoils. The optimal microcoils were fabricated and then used to realize a magnetic immunoassay in a microfluidic chip. The aim was to integrate these microcoils into a lab-on-chip and obtain a fast and highly sensitive biological element detection.
机译:在这项研究中,设计并制造了带有集成线圈的微流控芯片,目的是有效捕获磁性纳米珠(Adembeads,300 nm)并在工作时间内测量芯片的温度。此外,提出了一种可逆的键合聚二甲基硅氧烷(PDMS)通道的技术。此粘合过程使用CYTOP产品的涂层作为保护,绝缘和低粘合力层。可逆包装技术允许底部基板被重复使用(可能配备传感器)并使用一次性微通道网络。 FE方法用于ANSYS 12.1版软件来计算磁场和功耗。定义了品质因数,以便综合表示模拟线圈捕获单位功率(即给定热量)的磁珠的能力。仿真结果提出了一种优化平面微线圈设计标准的新方法。制备了最佳的微线圈,然后用于在微流控芯片中实现磁免疫测定。目的是将这些微线圈集成到芯片实验室中,并获得快速,高度灵敏的生物元素检测。

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