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微流控纸基分析装置中电迁移传输的综合模型。

Comprehensive model of electromigrative transport in microfluidic paper based analytical devices.

机构信息

INTEC (Universidad Nacional del Litoral-CONICET), Colectora RN 168 Km 472, S3000GLN, Santa Fe, Argentina.

CIMEC (Universidad Nacional del Litoral-CONICET), Colectora RN 168 Km 472, S3000GLN, Santa Fe, Argentina.

出版信息

Electrophoresis. 2020 Apr;41(7-8):598-606. doi: 10.1002/elps.201900353. Epub 2020 Jan 14.

DOI:10.1002/elps.201900353
PMID:31904869
Abstract

A complete mathematical model for electromigration in paper-based analytical devices is derived, based on differential equations describing the motion of fluids by pressure sources and EOF, the transport of charged chemical species, and the electric potential distribution. The porous medium created by the cellulose fibers is considered like a network of tortuous capillaries and represented by macroscopic parameters following an effective medium approach. The equations are obtained starting from their open-channel counterparts, applying scaling laws and, where necessary, including additional terms. With this approach, effective parameters are derived, describing diffusion, mobility, and conductivity for porous media. While the foundations of these phenomena can be found in previous reports, here, all the contributions are analyzed systematically and provided in a comprehensive way. Moreover, a novel electrophoretically driven dispersive transport mechanism in porous materials is proposed. Results of the numerical implementation of the mathematical model are compared with experimental data, showing good agreement and supporting the validity of the proposed model. Finally, the model succeeds in simulating a challenging case of free-flow electrophoresis in paper, involving capillary flow and electrophoretic transport developed in a 2D geometry.

摘要

基于描述压力源和电渗流驱动的流体运动、带电化学物质的传输以及电势分布的微分方程,推导了用于纸质分析器件电迁移的完整数学模型。纤维素纤维所形成的多孔介质类似于曲折毛细管网络,并通过有效介质方法采用宏观参数来表示。从明渠对应的方程出发,应用标度定律,并在必要时包括附加项,得到这些方程。通过这种方法,可以推导出描述多孔介质中扩散、迁移率和电导率的有效参数。尽管这些现象的基础可以在之前的报告中找到,但在这里,所有的贡献都被系统地分析并以全面的方式呈现。此外,还提出了一种新的在多孔材料中基于电泳驱动的弥散输运机制。数学模型的数值实现结果与实验数据进行了比较,结果吻合良好,支持了所提出模型的有效性。最后,该模型成功地模拟了纸中自由流动电泳的一个具有挑战性的案例,其中涉及在 2D 几何形状中发展的毛细管流动和电泳传输。

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