A novel micro-device for simultaneous separation-trapping and double-trapping of particles by using dielectrophoresis: numerical and experimental study

IF 2.4 4区 工程技术 Q2 ENGINEERING, ELECTRICAL & ELECTRONIC
M. Aghdasi, M. Nazari, Sareh Yonesi
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引用次数: 0

Abstract

Dielectrophoretic (DEP) force is a useful tool for manipulating particles in microfluidic systems. It is affected by the frequency of the applied electric field, which can be varied to produce repellent and attractive forces depending on the dielectric properties of particles and the media. In this work, two electric fields with different frequency are used to simultaneously separate and trap particles as well as double-trap particles by utilizing the DEP force. Initially, a single-vial microchannel was proposed to study the impact of the frequency and voltage on three types of electrodes: concentrator, repellent, and absorbing. The goal was to examine their efficacy in trapping a group of particles within the vial while separating and ejecting another group of particles from the microchannel. Performance graphs were used to determine the optimal voltages for the electrodes. Subsequently, an additional vial is incorporated into the microchannel to enable the double-trapping of particles with varying sizes and properties. With the optimal design, particles of varying sizes and properties can be trapped in separate vials within the microchannel. For the first time, the performance cartography of the proposed system has been assessed, enabling the identification of the optimal values and intelligent separations. Validation is conducted in two steps. Firstly, numerical findings are compared to previous experimental results to verify the accuracy of the numerical approach. Secondly, a microchip is fabricated, tested, and compared to numerical results using yeast cells to assess system efficiency and enhance the reliability of the numerical technique.
一种利用介电电泳同时分离捕获和双重捕获粒子的新型微器件:数值和实验研究
介电泳(DEP)力是在微流体系统中操纵颗粒的有用工具。它受到所施加电场频率的影响,根据颗粒和介质的介电性质,可以改变电场频率以产生排斥力和吸引力。在这项工作中,利用DEP力,使用两个不同频率的电场同时分离和捕获粒子以及双重捕获粒子。最初,提出了一个单小瓶微通道来研究频率和电压对三种类型电极的影响:集中器、排斥剂和吸收剂。目的是检查它们在小瓶内捕获一组颗粒,同时从微通道中分离和喷射另一组颗粒的效果。使用性能图来确定电极的最佳电压。随后,将额外的小瓶加入微通道中,以实现对具有不同尺寸和性质的颗粒的双重捕获。通过优化设计,可以将不同尺寸和性质的颗粒捕获在微通道内的单独小瓶中。首次对拟议系统的性能制图进行了评估,从而能够确定最佳值和智能分离。验证分两步进行。首先,将数值结果与以往的实验结果进行比较,以验证数值方法的准确性。其次,制作、测试了微芯片,并将其与使用酵母细胞的数值结果进行了比较,以评估系统效率并提高数值技术的可靠性。
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来源期刊
Journal of Micromechanics and Microengineering
Journal of Micromechanics and Microengineering 工程技术-材料科学:综合
CiteScore
4.50
自引率
4.30%
发文量
136
审稿时长
2.8 months
期刊介绍: Journal of Micromechanics and Microengineering (JMM) primarily covers experimental work, however relevant modelling papers are considered where supported by experimental data. The journal is focussed on all aspects of: -nano- and micro- mechanical systems -nano- and micro- electomechanical systems -nano- and micro- electrical and mechatronic systems -nano- and micro- engineering -nano- and micro- scale science Please note that we do not publish materials papers with no obvious application or link to nano- or micro-engineering. Below are some examples of the topics that are included within the scope of the journal: -MEMS and NEMS: Including sensors, optical MEMS/NEMS, RF MEMS/NEMS, etc. -Fabrication techniques and manufacturing: Including micromachining, etching, lithography, deposition, patterning, self-assembly, 3d printing, inkjet printing. -Packaging and Integration technologies. -Materials, testing, and reliability. -Micro- and nano-fluidics: Including optofluidics, acoustofluidics, droplets, microreactors, organ-on-a-chip. -Lab-on-a-chip and micro- and nano-total analysis systems. -Biomedical systems and devices: Including bio MEMS, biosensors, assays, organ-on-a-chip, drug delivery, cells, biointerfaces. -Energy and power: Including power MEMS/NEMS, energy harvesters, actuators, microbatteries. -Electronics: Including flexible electronics, wearable electronics, interface electronics. -Optical systems. -Robotics.
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