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颗粒-壁相互作用对场流分级介电泳装置分离效率的作用分析。

Analysis of the role of the particle-wall interaction on the separation efficiencies of field flow fractionation dielectrophoretic devices.

作者信息

Camarda Massimo, Scalese Silvia, La Magna Antonino

机构信息

CNR-IMM, Sezione di Catania, Catania, Italy.

出版信息

Electrophoresis. 2015 Jul;36(13):1396-404. doi: 10.1002/elps.201400385. Epub 2015 Mar 13.

Abstract

In this paper we have used both analytical models and finite element simulations to analyze the role of the particle-wall dipole interaction in field-flow fractionation dielectrophoretic (FFF-DEP) devices. We identify the existence of "anomalous" regions where the dielectrophoretic response is altered, independently of the complex dielectric permittivity of the particles and suspending medium. In these regions the interaction between the particle and the conductive (isolating) walls induces cohesive (repulsive) forces, independently of the Clausius-Mossotti term. We quantify the impact of such an effect, which can critically decrease the specificity and sensitivity of both continuous- and batch-mode FFF-DEP. We find a scale invariant relation correlating the particles radius (Rp ) and the electrodes width (Wel ), which permits the design of dielectrophoretic schema capable of avoiding the generation of such regions. Specifically, to avoid the generation of the anomalous DEP regions, Wel should be chosen smaller than ∼5.2 Rp . For this reason, interdigitate schema with electrode widths of 14 μm and gaps of 50 μm could improve the separation efficiency of FFF-DEP devices in the case of rare cells separation in blood samples.

摘要

在本文中,我们使用分析模型和有限元模拟来分析颗粒 - 壁偶极相互作用在场流分级介电泳(FFF - DEP)装置中的作用。我们确定了存在“异常”区域,在这些区域中,介电泳响应会发生改变,而与颗粒和悬浮介质的复介电常数无关。在这些区域中,颗粒与导电(绝缘)壁之间的相互作用会产生内聚(排斥)力,这与克劳修斯 - 莫索蒂项无关。我们量化了这种效应的影响,它会严重降低连续模式和批处理模式FFF - DEP的特异性和灵敏度。我们发现了一个与颗粒半径(Rp)和电极宽度(Wel)相关的尺度不变关系,这使得能够设计出能够避免产生此类区域的介电泳模式。具体而言,为避免产生异常DEP区域,应选择小于约5.2 Rp的Wel。因此,对于血液样本中稀有细胞的分离,电极宽度为14μm且间隙为50μm的叉指式模式可以提高FFF - DEP装置的分离效率。

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