Miller Abbi, Hill Nicole, Hakim Kel, Lapizco-Encinas Blanca H
Microscale Bioseparations Laboratory and Biomedical Engineering Department, Rochester Institute of Technology, Rochester, NY 14623, USA.
Micromachines (Basel). 2021 May 28;12(6):628. doi: 10.3390/mi12060628.
The manner of sample injection is critical in microscale electrokinetic (EK) separations, as the resolution of a separation greatly depends on sample quality and how the sample is introduced into the system. There is a significant wealth of knowledge on the development of EK injection methodologies that range from simple and straightforward approaches to sophisticated schemes. The present study focused on the development of optimized EK sample injection schemes for direct current insulator-based EK (DC-iEK) systems. These are microchannels that contain arrays of insulating structures; the presence of these structures creates a nonuniform electric field distribution when a potential is applied, resulting in enhanced nonlinear EK effects. Recently, it was reported that the nonlinear EK effect of electrophoresis of the second kind plays a major role in particle migration in DC-iEK systems. This study presents a methodology for designing EK sample injection schemes that consider the nonlinear EK effects exerted on the particles being injected. Mathematical modeling with COMSOL Multiphysics was employed to identify proper voltages to be used during the EK injection process. Then, a T-microchannel with insulating posts was employed to experimentally perform EK injection and separate a sample containing two types of similar polystyrene particles. The quality of the EK injections was assessed by comparing the resolution () and number of plates () of the experimental particle separations. The findings of this study establish the importance of considering nonlinear EK effects when planning for successful EK injection schemes.
在微尺度电动(EK)分离中,样品注入方式至关重要,因为分离的分辨率很大程度上取决于样品质量以及样品引入系统的方式。关于EK注入方法的发展,已有大量丰富的知识,其范围从简单直接的方法到复杂的方案。本研究聚焦于基于直流绝缘体的EK(DC-iEK)系统的优化EK样品注入方案的开发。这些是包含绝缘结构阵列的微通道;当施加电势时,这些结构的存在会产生不均匀的电场分布,从而导致增强的非线性EK效应。最近有报道称,第二类电泳的非线性EK效应在DC-iEK系统中的粒子迁移中起主要作用。本研究提出了一种设计EK样品注入方案的方法,该方法考虑了施加在被注入粒子上的非线性EK效应。采用COMSOL Multiphysics进行数学建模,以确定EK注入过程中要使用的合适电压。然后,使用带有绝缘柱的T型微通道通过实验进行EK注入,并分离包含两种类似聚苯乙烯颗粒的样品。通过比较实验性粒子分离的分辨率()和塔板数()来评估EK注入的质量。本研究结果确立了在规划成功的EK注入方案时考虑非线性EK效应的重要性。