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A comprehensive review on current COVID-19 detection methods: From lab care to point of care diagnosis.关于当前新冠病毒检测方法的全面综述:从实验室检测到即时检测诊断
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Integrated microfluidic platform with electrohydrodynamic focusing and a carbon-nanotube-based field-effect transistor immunosensor for continuous, selective, and label-free quantification of bacteria.集成微流控平台,具备电液动力学聚焦功能以及基于碳纳米管的场效应晶体管免疫传感器,用于细菌的连续、选择性和无标记定量分析。
Lab Chip. 2021 Jan 5;21(1):184-195. doi: 10.1039/d0lc00783h.
4
Scaled particle focusing in a microfluidic device with asymmetric electrodes utilizing induced-charge electroosmosis.基于感应电荷电渗流的微流控装置中非对称电极的缩放颗粒聚焦。
Lab Chip. 2016 Aug 7;16(15):2803-12. doi: 10.1039/c6lc00485g. Epub 2016 Jun 29.
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Continuous flow nanoparticle concentration using alternating current-electroosmotic flow.采用交流电-电动流动的连续流纳米颗粒浓缩。
Electrophoresis. 2014 Feb;35(4):467-73. doi: 10.1002/elps.201300287. Epub 2013 Dec 5.
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Factors affecting particle collection by electro-osmosis in microfluidic systems.微流控系统中影响电渗颗粒收集的因素。
Electrophoresis. 2014 Feb;35(2-3):345-51. doi: 10.1002/elps.201300420. Epub 2013 Dec 2.
7
On-chip collection of particles and cells by AC electroosmotic pumping and dielectrophoresis using asymmetric microelectrodes.使用非对称微电极通过交流电动泵送和介电泳在片上收集颗粒和细胞。
Biomicrofluidics. 2011 Sep;5(3):34113-3411317. doi: 10.1063/1.3620419. Epub 2011 Aug 10.
8
Towards an understanding of induced-charge electrokinetics at large applied voltages in concentrated solutions.在浓溶液中,理解大外加电压下的感应电荷电动现象。
Adv Colloid Interface Sci. 2009 Nov 30;152(1-2):48-88. doi: 10.1016/j.cis.2009.10.001. Epub 2009 Oct 8.
9
DC-biased AC-electroosmotic and AC-electrothermal flow mixing in microchannels.微通道中直流偏置的交流电渗流与交流电热流混合
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10
Applications of dielectrophoretic/electrohydrodynamic "zipper" electrodes for detection of biological nanoparticles.介电泳/电流体动力学“拉链”电极在生物纳米颗粒检测中的应用。
Int J Nanomedicine. 2007;2(3):427-31.

利用交流电渗和介电泳优化流动中上游颗粒浓度

Optimization of upstream particle concentration from flow using AC electro-osmosis and dielectrophoresis.

作者信息

Smith de Diego Africa, Griffiths Oreoluwa V, Johnson Matthew P, de Montis Marco, Hughes Michael Pycraft

机构信息

Kromek Ltd, Thomas Wright Way, Sedgefield, County Durham, TS21 3FD, United Kingdom.

Centre for Biomedical Engineering, University of Surrey, Guildford, Surrey GU2 7XH, United Kingdom.

出版信息

Biomicrofluidics. 2024 Apr 4;18(2):024105. doi: 10.1063/5.0189137. eCollection 2024 Mar.

DOI:10.1063/5.0189137
PMID:38585002
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC10997383/
Abstract

There are many applications where upstream sample processing is required to concentrate dispersed particles in flow; this may be to increase the concentration (e.g., to enhance biosensor accuracy) or to decrease it (e.g., by removing contaminants from flow). The AC electrokinetic phenomenon, dielectrophoresis (DEP), has been used widely for particle trapping for flow, but the magnitude of the force drops reduces rapidly with distance from electrode edges, so that nm-scale particles such as viruses and bacteria are only trapped when near the electrode surface. This limits the usable flow rate in the device and can render the final device unusable for practical applications. Conversely, another electrokinetic phenomenon, AC electro-osmosis (ACEO), can be used to move particles to electrode surfaces but is unable to trap them from flow, limiting their ability for sample cleanup or trap-and-purge concentration. In this paper, we describe the optimization of ACEO electrodes aligned parallel to pressure-driven flow as a precursor/preconditioner to capture particles from a flow stream and concentrate them adjacent to the channel wall to enhance DEP capture. This is shown to be effective at flow rates of up to 0.84 ml min. Furthermore, the analysis of the 3D flow structure in the ACEO device by both simulation and confocal microscopy suggests that while the system offers significant benefits, the flow structure in the volume near the channel lid is such that while substantial trapping can occur, particles in this part of the chamber cannot be trapped, independent of the chamber height.

摘要

在许多应用中,需要进行上游样品处理以浓缩流动中的分散颗粒;这可能是为了提高浓度(例如,提高生物传感器的准确性)或降低浓度(例如,通过去除流动中的污染物)。交流电动现象,即介电泳(DEP),已被广泛用于捕获流动中的颗粒,但力降的大小会随着与电极边缘距离的增加而迅速减小,因此只有当病毒和细菌等纳米级颗粒靠近电极表面时才会被捕获。这限制了设备中可用的流速,并可能使最终设备在实际应用中无法使用。相反,另一种电动现象,即交流电渗(ACEO),可用于将颗粒移动到电极表面,但无法从流动中捕获它们,限制了其进行样品净化或捕获与清除浓缩的能力。在本文中,我们描述了与压力驱动流平行排列的ACEO电极的优化,作为从流动流中捕获颗粒并将它们浓缩在通道壁附近以增强DEP捕获的前驱体/预处理步骤。结果表明,在流速高达0.84 ml min时,这一方法是有效的。此外,通过模拟和共聚焦显微镜对ACEO设备中的三维流动结构进行分析表明,虽然该系统具有显著优势,但通道盖附近区域的流动结构使得虽然可以发生大量捕获,但腔室这部分中的颗粒无法被捕获,且与腔室高度无关。