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Magnetic microbead transport during resistive pulse sensing

机译:电阻性脉冲感测期间的磁性微珠传输

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摘要

Tunable resistive pulse sensing (TRPS) experiments have been used to quantitatively study the motion of 1 μm superparamagnetic beads in a variable magnetic field. Closed-form theory has been developed to interpret the experiments, incorporating six particle transport mechanisms which depend on particle position in and near a conical pore. For our experiments, calculations indicate that pressure-driven flow dominates electrophoresis and magnetism by a factor of ∼100 in the narrowest part of the pore, but that magnetic force should dominate further than ∼1 mm from the membrane. As expected, the observed resistive pulse rate falls as the magnet is moved closer to the pore, while the increase in pulse duration suggests that trajectories in the half space adjacent to the pore opening are important. Aggregation was not observed, consistent with the high hydrodynamic shear near the pore constriction and the high magnetization of aggregates. The theoretical approach is also used to calculate the relative importance of transport mechanisms over a range of geometries and experimental conditions extending well beyond our own experiments. TRPS is emerging as a versatile form of resistive pulse sensing, while magnetic beads are widely used in biotechnology and sensing applications.
机译:可调电阻脉冲感测(TRPS)实验已用于定量研究1fieldμm超顺磁珠在可变磁场中的运动。已开发出封闭形式的理论来解释实验,该理论结合了六种颗粒传输机制,这些机制取决于圆锥孔内和附近的颗粒位置。对于我们的实验,计算表明,在孔隙的最狭窄部分中,压力驱动的流动在电泳和磁性方面占主导地位,约为100倍,但磁力距薄膜的主导地位仍远高于1毫米。正如预期的那样,随着磁体移近孔隙,观察到的电阻脉冲率会下降,而脉冲持续时间的增加表明与孔隙开口相邻的半空间中的轨迹很重要。没有观察到聚集,这与孔收缩附近的高流体动力剪切和聚集体的高磁化强度相一致。理论方法还用于计算在超出我们自己的实验范围之外的一系列几何形状和实验条件下,传输机制的相对重要性。 TRPS逐渐成为一种多功能形式的电阻脉冲传感,而磁珠则广泛用于生物技术和传感应用中。

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