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Electronic detection of dielectrophoretic forces exerted on particles flowing over interdigitated electrodes

机译:电子检测施加在叉指电极上流动的粒子上的介电泳力

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摘要

Dielectric particles flowing through a microfluidic channel over a set of coplanar electrodes can be simultaneously capacitively detected and dielectrophoretically (DEP) actuated when the high (1.45 GHz) and low (100 kHz–20 MHz) frequency electromagnetic fields are concurrently applied through the same set of electrodes. Assuming a simple model in which the only forces acting upon the particles are apparent gravity, hydrodynamic lift, DEP force, and fluid drag, actuated particle trajectories can be obtained as numerical solutions of the equations of motion. Numerically calculated changes of particle elevations resulting from the actuation simulated in this way agree with the corresponding elevation changes estimated from the electronic signatures generated by the experimentally actuated particles. This verifies the model and confirms the correlation between the DEP force and the electronic signature profile. It follows that the electronic signatures can be used to quantify the actuation that the dielectric particle experiences as it traverses the electrode region. Using this principle, particles with different dielectric properties can be effectively identified based exclusively on their signature profile. This approach was used to differentiate viable from non-viable yeast cells (Saccharomyces cerevisiae).
机译:当通过同一组同时施加高频(1.45 GHz)和低频(100 kHz-20 MHz)电磁场时,可以同时电容性检测流经一组共面电极上的微流体通道的介电粒子,并通过介电电泳(DEP)激活。电极。假设一个简单的模型,其中作用在颗粒上的唯一力是表观重力,流体动力升力,DEP力和流体阻力,则可以将被激活的颗粒轨迹作为运动方程的数值解获得。通过这种方式模拟的致动而在数值上计算出的粒子高度变化,与从由实验致动的粒子产生的电子签名估计出的相应高度变化相符。这将验证模型并确认DEP力和电子签名配置文件之间的相关性。因此,可以使用电子签名来量化介电粒子横穿电极区域时所经历的驱动。使用此原理,可以仅基于其特征曲线有效地识别具有不同介电特性的颗粒。该方法用于区分有活力的酵母细胞和无活力的酵母细胞(酿酒酵母)。

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