Graphical abstract<'/> A novel wiring scheme for standard chips enabling high-accuracy impedance cytometry
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A novel wiring scheme for standard chips enabling high-accuracy impedance cytometry

机译:一种用于标准芯片的新颖接线方案,可实现高精度阻抗细胞计数

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Graphical abstractDisplay OmittedHighlightsAccuracy of microfluidic impedance cytometry is enhanced without the need for particle focusing.A novel wiring scheme for the standard four-electrode chip is introduced.Stimulating AC voltage is applied to diagonally opposite electrodes instead of adjacent ones.Size CVs of 5.2, 6, and 7μm beads of 2.8%, 1%, and 1.2%, are obtained via simple calibration.The method is effective for both facing- and coplanar-electrode layout.AbstractWhile there is a great interest in microfluidic impedance cytometry as a label-free approach for single-particle analysis, the accuracy of the technique is challenged by the positional dependence issue, i.e. identical particles flowing in the microchannel along different trajectories provide different signals. We solve this issue without resorting to particle focusing, by means of a straightforward modification of the conventional wiring scheme for the standard impedance chip comprising two pairs of facing electrodes. Instead of applying the AC voltage to electrodes on the same side of the channel and collecting the differential current flowing through the electrodes on the other side, we apply the AC voltage to diagonally opposite electrodes and collect the differential current flowing through the remaining ones. Therefore, the bipolar signal recorded upon the passage of a particle shows opposite pulses withdifferentamplitude. The relative difference of the latter is a new metric enabling a simple compensation procedure of the signal impedance for off-center particles. Impedance data for 5.2, 6, and 7μm particles are collected, and coefficients of variation in (electrical) diameter of particles respectively of 2.8%, 1%, and 1.2%, similar to the manufacturers’ quoted values, are obtained. The novel operation mode is successfully implemented also in a coplanar electrode configuration, exploiting two pairs of liquid electrodes.
机译: 图形摘要 省略显示 重点 无需增强微流阻细胞计数的准确性 A介绍了用于标准四电极芯片的新颖接线方案。 刺激性的交流电压施加在对角相对的电极上,而不是相邻的电极上。 大小CV为5.2,通过简单的校准,可以得到分别为2.8%,1%和1.2%的6和7μm珠。 该方法对于面对电极和共面电极布局均有效。 摘要 尽管对微流控阻抗细胞计数法感兴趣的是单标记法的无标记方法在粒子分析中,该技术的准确性受到位置依赖性问题的挑战,即沿着不同轨迹在微通道中流动的相同粒子会提供不同的信号。我们通过对包括两对面对电极的标准阻抗芯片的常规布线方案进行直接修改,解决了这个问题,而无需借助粒子聚焦。我们不是将交流电压施加到通道同一侧的电极上并收集流过另一侧电极的差分电流,而是将交流电压施加到对角相对的电极上并收集流过其余电极的差分电流。因此,在粒子通过时记录的双极信号显示了具有不同振幅的相反脉冲。后者的相对差异是一种新的度量标准,可以实现偏心粒子的信号阻抗的简单补偿过程。收集了5.2、6和7μm颗粒的阻抗数据,获得的颗粒(电)直径的变化系数分别为2.8%,1%和1.2%,与制造商的引用值相似。通过使用两对液体电极,在共面电极配置中也成功实现了新颖的操作模式。

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