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A Comparison of Insulator-Based Dielectrophoretic Devices for the Monitoring and Separation of Waterborne Pathogens as a Function of Microfabrication Technique

机译:基于绝缘体的介电泳装置对水生病原体的监测和分离的比较,作为微细加工技术的一项功能

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We present the selective trapping, concentration, and release of various biological organisms and inert beads utilizing insulator-based dielectrophoresis (iDEP) with discrete post arrays inside a polymeric microfluidic device. The arrays of insulating posts used to constrict electric field lines within the microchannel were fabricated using two of the most common fabrication techniques: chemical isotropic and reactive ion anisotropic etching. These fabrication methods, therefore, produce structures with distinct transverse profiles-the reactive ion etch produces relatively straight sidewalls, whereas the chemical etch produces tapered sidewalls. The devices were utilized to selectively separate and concentrate a variety of biological simulants and organisms. The dielectrophoretic responses of the organisms were observed to be a function of the applied electric field as well as post size and channel geometry. We then compare the device performance as a function of microfabrication methodology and through comparing experimental results and those predicted by computational modeling. We have found that there is a direct dependence on the cross-section profile of the channel and the non-uniform electric field gradients generated. This variation has a significant impact on the resultant performance and separation efficiency of the device.
机译:我们介绍了选择性的捕获,浓缩和释放各种生物利用惰性的基于介电电泳(iDEP)与聚合物微流控装置内部的离散阵列的惰性珠。使用两种最常见的制造技术制造了用于限制微通道内电场线的绝缘柱阵列:化学各向同性和反应性离子各向异性蚀刻。因此,这些制造方法产生具有不同横向轮廓的结构-反应离子蚀刻产生相对笔直的侧壁,而化学蚀刻产生锥形侧壁。该设备用于选择性分离和浓缩各种生物模拟物和生物。观察到生物体的介电泳响应是所施加电场以及柱大小和通道几何形状的函数。然后,我们通过比较实验结果和通过计算模型预测的结果,比较了作为微细加工方法的功能的设备性能。我们已经发现,通道的横截面轮廓和所产生的不均匀电场梯度直接相关。这种变化对装置的最终性能和分离效率具有重大影响。

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