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On-Chip Magnetic Bead Manipulation and Detection Using a Magnetoresistive Sensor-Based Micro-Chip: Design Considerations and Experimental Characterization

机译:基于基于磁阻传感器的微芯片的片上磁珠操纵和检测:设计考虑和实验表征

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The remarkable advantages micro-chip platforms offer over cumbersome, time-consuming equipment currently in use for bio-analysis are well documented. In this research, a micro-chip that includes a unique magnetic actuator (MA) for the manipulation of superparamagnetic beads (SPBs), and a magnetoresistive sensor for the detection of SPBs is presented. A design methodology, which takes into account the magnetic volume of SPBs, diffusion and heat transfer phenomena, is presented with the aid of numerical analysis to optimize the parameters of the MA. The MA was employed as a magnetic flux generator and experimental analysis with commercially available COMPEL? and Dynabeads ? demonstrated the ability of the MA to precisely transport a small number of SPBs over long distances and concentrate SPBs to a sensing site for detection. Moreover, the velocities of COMPEL? and Dynabead ? SPBs were correlated to their magnetic volumes and were in good agreement with numerical model predictions. We found that 2.8 μm Dynabeads ? travel faster, and can be attracted to a magnetic source from a longer distance, than 6.2 μm COMPEL? beads at magnetic flux magnitudes of less than 10 mT. The micro-chip system could easily be integrated with electronic circuitry and microfluidic functions, paving the way for an on-chip biomolecule quantification device.
机译:与目前用于生物分析的笨重,费时的设备相比,微芯片平台的显着优势已得到充分证明。在这项研究中,提出了一种微芯片,该芯片包括用于操纵超顺磁珠(SPB)的独特磁致动器(MA)和用于检测SPB的磁阻传感器。借助于数值分析,提出了一种设计方法,该方法考虑了SPB的磁体积,扩散和传热现象,以优化MA的参数。 MA被用作磁通量发生器,并使用市售的COMPEL?进行实验分析。和Dynabeads?展示了MA能够精确地将少量SPB长距离运输并将SPB集中到传感部位进行检测的能力。此外,COMPLE的速度?和Dynabead? SPB与它们的磁体积相关,并且与数值模型预测非常吻合。我们发现2.8μmDynabeads?比6.2μmCOMPEL的传播速度更快,并且可以从更长的距离吸引到磁源?磁通量小于10 mT的磁珠。该微芯片系统可以轻松地与电子电路和微流体功能集成在一起,从而为片上生物分子定量设备铺平了道路。

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