使用带电的盘式微流控平台对微粒进行介电泳分离/分类/聚焦。
Dielectrophoretic separation/classification/focusing of microparticles using electrified lab-on-a-disc platforms.
作者信息
Kordzadeh-Kermani Vahid, Ashrafizadeh Seyed Nezameddin, Madadelahi Masoud
机构信息
Research Lab for Advanced Separation Processes, Department of Chemical Engineering, Iran University of Science and Technology, Narmak, Tehran, 16846-13114, Iran.
Research Lab for Advanced Separation Processes, Department of Chemical Engineering, Iran University of Science and Technology, Narmak, Tehran, 16846-13114, Iran.
出版信息
Anal Chim Acta. 2024 Jun 29;1310:342719. doi: 10.1016/j.aca.2024.342719. Epub 2024 May 11.
BACKGROUND
Separation, classification, and focusing of microparticles are essential issues in microfluidic devices that can be implemented in two categories: using labeling and label-free methods. Label-free methods differentiate microparticles based on their inherent properties, including size, density, shape, electrical conductivity/permittivity, and magnetic susceptibility. Dielectrophoresis is an advantageous label-free technique for this objective. Besides, centrifugal microfluidic devices exploit centrifugal forces to move liquid and particles. The simultaneous combination of dielectrophoretic and centrifugal forces exerted on microparticles still needs to be scrutinized more to predict their trajectories in such devices.
RESULTS
An integrated system utilizing two categories in microfluidics is proposed: dielectrophoretic manipulation of microparticles and centrifugal-driven microfluidics, followed by a numerical analysis. In this regard, we assumed a rectangular microchannel with internal unilateral planar electrodes equipped with three equal-sized outlets placed radially on a centrifugal platform where microparticles flow toward the disc's outer edge. The effect of different coordinate-based parameters, including radial and lateral distances (X and Y offsets)/tilting angles toward the radius direction (α), on the particles' movement was investigated. Additionally, the effect of operational parameters, including applied voltage, the microchannel width, the number of enabled electrodes, the diameter of particles, and the configuration of electrodes, were analyzed, and the distributions of particles toward the outlets were monitored. It was found that enhanced particle focusing becomes possible at lower rotation speeds and higher electric field values. Furthermore, the proposed centrifugal-DEP system's efficiency for classifying red blood cells/platelets and Live/Dead yeast cells systems was evaluated.
SIGNIFICANCE
Our integrated system is introduced as a novel method for focusing and classifying various microparticles with no need for sheath flows, having the ability to conduct particles at desired routes and focusing width. Furthermore, the system effectively separates various bioparticles and offers ease of operation and high-efficiency throughput over conventional dielectrophoretic devices.
背景
微粒的分离、分类和聚焦是微流控设备中的关键问题,可通过两类方法实现:使用标记法和无标记法。无标记法基于微粒的固有属性(包括大小、密度、形状、电导率/介电常数和磁化率)来区分微粒。介电电泳是实现此目的的一种优势无标记技术。此外,离心微流控设备利用离心力移动液体和微粒。作用于微粒的介电力和离心力的同时组合仍需进一步研究,以预测它们在此类设备中的轨迹。
结果
提出了一种集成系统,该系统利用微流控中的两类方法:微粒的介电电泳操控和离心驱动微流控,随后进行数值分析。在此方面,我们假设了一个矩形微通道,其内部单侧平面电极配备有三个等尺寸的出口,这些出口径向放置在离心平台上,微粒朝圆盘的外边缘流动。研究了不同基于坐标的参数(包括径向和横向距离(X和Y偏移)/相对于半径方向的倾斜角(α))对微粒运动的影响。此外,分析了操作参数(包括施加电压、微通道宽度、启用电极的数量、微粒直径和电极配置)的影响,并监测了微粒朝向出口的分布。结果发现,在较低转速和较高电场值下可实现增强的微粒聚焦。此外,还评估了所提出的离心介电电泳系统对红细胞/血小板以及活/死酵母细胞系统进行分类的效率。
意义
我们的集成系统作为一种新型方法被引入,用于聚焦和分类各种微粒,无需鞘流,能够将微粒引导至所需路径并实现聚焦宽度。此外,该系统有效地分离了各种生物微粒,与传统介电电泳设备相比,具有操作简便和高通量效率高的特点。