Munir A, Wang J, Zhou H S
Worcester Polytechnic Institute, Department of Chemical Engineering, Worcester, MA 01609, USA.
IET Nanobiotechnol. 2009 Sep;3(3):55-64. doi: 10.1049/iet-nbt.2008.0015.
A mathematical model based on finite-element technique is developed for predicting the transport and capture of multiple magnetic nanoparticles in a microfluidic system that consists of a microfluidic channel enclosed by a permanent magnet. The trajectories and trapping efficiencies are calculated for multiple magnetic nanoparticles when released in the microsystem. It is demonstrated that not only the size but also the point of release of nanoparticles within the microchannel affects the capturing process. Influence of three important parameters, inlet velocities of fluid containing magnetic nanoparticles, diameter of magnetic nanoparticles and magnetic field strength on the trapping efficiency are investigated and optimised values of inlet velocity and magnetic field strength for completely trapping 50 nm magnetic nanoparticles are predicted. It is further demonstrated that the angular position of magnet around the microchannel is also critical in dictating the resulting bioseparation performance. Furthermore, combination of these analyses using the mathematical model will be very useful in the design and development of novel microfluidic bioseparation microsystems.
基于有限元技术开发了一种数学模型,用于预测微流体系统中多个磁性纳米颗粒的传输和捕获,该微流体系统由被永磁体包围的微流体通道组成。计算了多个磁性纳米颗粒在微系统中释放时的轨迹和捕获效率。结果表明,不仅纳米颗粒的尺寸,而且其在微通道内的释放点都会影响捕获过程。研究了含有磁性纳米颗粒的流体的入口速度、磁性纳米颗粒的直径和磁场强度这三个重要参数对捕获效率的影响,并预测了完全捕获50 nm磁性纳米颗粒时入口速度和磁场强度的优化值。进一步证明,磁体围绕微通道的角位置对于决定最终的生物分离性能也至关重要。此外,使用该数学模型进行这些分析的组合将对新型微流体生物分离微系统的设计和开发非常有用。