Wang Yi, Lin Qiao, Mukherjee Tamal
Department of Mechanical Engineering, Carnegie Mellon University, Pittsburgh, PA 15213, USA.
Lab Chip. 2004 Oct;4(5):453-63. doi: 10.1039/b401458h. Epub 2004 Jul 30.
This paper presents a system-oriented model for analyzing the dispersion of electrophoretic transport of charged analyte molecules in a general-shaped microchannel, which is represented as a system of serially connected elemental channels of simple geometry. Parameterized analytical models that hold for analyte bands of virtually arbitrary initial shape are derived to describe analyte dispersion, including both the skew and broadening of the band, in elemental channels. These models are then integrated to describe dispersion in the general-shaped channel using appropriate parameters to represent interfaces of adjacent elements. This lumped-parameter system model offers orders-of-magnitude improvement in computational efficiency over full numerical simulations, and is verified by results from experiments and numerical simulations. The model is used to perform a systematic parametric study of serpentine channels consisting of a pair of complementary turn microchannels, and the results indicate that dispersion in a particular turn can contribute to either an increase or decrease of the overall band broadening. The efficiency and accuracy of the system model is further demonstrated by its application to general-shaped channels that occur in practice, including a serpentine channel with multiple complementary turns and a multi-turn spiral-shaped channel. The results indicate that our model is an accurate and efficient simulation tool useful for designing optimal electrophoretic separation microchips.
本文提出了一种面向系统的模型,用于分析一般形状微通道中带电分析物分子电泳迁移的分散情况,该微通道被表示为一系列由简单几何形状的基本通道串联而成的系统。推导了适用于几乎任意初始形状分析物带的参数化分析模型,以描述基本通道中分析物的分散情况,包括带的歪斜和展宽。然后,使用适当的参数来表示相邻元件的界面,将这些模型进行整合,以描述一般形状通道中的分散情况。与全数值模拟相比,这种集总参数系统模型在计算效率上提高了几个数量级,并通过实验和数值模拟结果进行了验证。该模型用于对由一对互补转弯微通道组成的蛇形通道进行系统的参数研究,结果表明特定转弯处的分散可能导致整体带展宽增加或减少。该系统模型在应用于实际中出现的一般形状通道(包括具有多个互补转弯的蛇形通道和多转弯螺旋形通道)时,进一步证明了其效率和准确性。结果表明,我们的模型是一种准确有效的模拟工具,可用于设计最佳的电泳分离微芯片。