Microsystems, Department of Mechanical Engineering, Eindhoven University of Technology, The Netherlands.
Lab Chip. 2017 Nov 7;17(22):3826-3840. doi: 10.1039/c7lc00718c.
Magnetic beads play an important role in the miniaturization of clinical diagnostics systems. In lab-on-chip platforms, beads can be made to link to a target species and can then be used for the manipulation and detection of this species. Current bead actuation systems utilize complex on-chip coil systems that offer low field strengths and little versatility. We demonstrate a novel system based on an external rotating magnetic field and on-chip soft-magnetic structures to focus the field locally. These structures were designed and optimized using finite element simulations in order to create a number of local flux density maxima. These maxima, to which the magnetic beads are attracted, move over the chip surface in a continuous way together with the rotation of the external field, resulting in a mechanism similar to that of a conveyor belt. A prototype was fabricated using PDMS molding techniques mixed with iron powder for the magnetic structures. In the subsequent experiments, a quadrupole electromagnet was used to create the rotating external field. We observed that beads formed agglomerates that rolled over the chip surface, just above the magnetic structures. Field rotation frequencies between 0.1-50 Hz were tested resulting in magnetic bead speeds of over 1 mm s for the highest frequency. With this, we have shown that our novel concept works, combining a simple design and simple operation with a powerful and versatile method for bead actuation. This makes it a promising method for further research and utilization in lab-on-chip systems.
磁珠在临床诊断系统的小型化中起着重要作用。在芯片实验室平台上,珠子可以与目标物种连接,然后用于该物种的操作和检测。目前的珠子致动系统利用复杂的片上线圈系统,提供低场强和很少的多功能性。我们展示了一种基于外部旋转磁场和片上软磁结构的新型系统,用于局部聚焦磁场。这些结构是使用有限元模拟设计和优化的,以创建多个局部磁通密度最大值。这些最大值吸引磁性珠子,随着外部磁场的旋转,以连续的方式在芯片表面上移动,从而产生类似于输送带的机制。使用 PDMS 成型技术与磁性结构中的铁粉混合制造了一个原型。在随后的实验中,使用四极电磁铁产生旋转的外部磁场。我们观察到珠子形成了团聚体,在磁性结构上方滚过芯片表面。测试了 0.1-50 Hz 之间的磁场旋转频率,导致最高频率时磁珠速度超过 1mm/s。通过这种方式,我们已经证明了我们的新概念是可行的,它将简单的设计和操作与强大而多功能的珠子致动方法相结合。这使其成为在芯片实验室系统中进一步研究和利用的有前途的方法。