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A Force Study of On-Chip Magnetic Particle Transport Based on Tapered Conductors

机译:基于锥形导体的片上磁粉输运力研究

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Recently, magnetic biosensors have shown to be promising alternatives for classical fluorescence-based detection schemes. While on-chip detection of magnetic particles is well established, research groups now start to explore the unique possibility to manipulate these particles by applying controlled magnetic forces. By immobilizing biomolecules onto the particle's surface, this results in a number of additional functionalities, turning the label - which was previously solely a means of detection - into a "smart" label. In this paper, we give an overview of the dominant forces acting on a magnetic particle when manipulated by transporting devices such as the ones that are currently developed at our lab. First, we describe a computational approach to predict the motion of the magnetic particle. It is based on a force balance of perpendicular forces to determine the particle/substrate separation distance. After this, we calculate the in-plane forces that determine the mobility of the particle and which are dependent on this separation distance. Next, we validate this model for the movement of particles in water. We then show how the surface forces influence the particle/substrate separation distance - and therefore the mobility of the particle - for various pH values and ionic strengths of the liquid.
机译:最近,磁性生物传感器已显示出是经典的基于荧光的检测方案的有前途的替代方法。虽然已经很好地建立了对磁性粒子的片上检测的方法,但研究小组现在开始探索通过施加受控磁力来操纵这些粒子的独特可能性。通过将生物分子固定在颗粒表面上,这带来了许多附加功能,从而使以前仅用作检测手段的标记变成了“智能”标记。在本文中,我们概述了由运输设备(例如我们实验室当前开发的设备)操纵时作用在磁性粒子上的主导力。首先,我们描述一种预测磁性粒子运动的计算方法。它基于垂直力的力平衡来确定颗粒/基材的分离距离。此后,我们计算平面内力,该力决定了粒子的迁移率,并且取决于该分离距离。接下来,我们验证该模型在水中的运动。然后,我们展示了在各种pH值和液体离子强度下,表面力如何影响颗粒/底物的分离距离-进而影响颗粒的迁移率。

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