Nasir Ahamed Nuzhet Nihaar, Mendiola-Escobedo Carlos A, Perez-Gonzalez Victor H, Lapizco-Encinas Blanca H
Microscale Bioseparations Laboratory and Biomedical Engineering Department, Rochester Institute of Technology, 160 Lomb Memorial Drive, Rochester, New York, 14623, USA.
School of Engineering and Sciences, Tecnologico de Monterrey, Monterrey, Nuevo Leon 64849, Mexico.
Analyst. 2024 Apr 15;149(8):2469-2479. doi: 10.1039/d3an02160b.
There is a growing interest in the advancement of microscale electrokinetic (EK) systems for biomedical and clinical applications, as these systems offer attractive characteristics such as portability, robustness, low sample requirements and short response time. The present work is focused on manipulating the characteristics of the insulating post arrangement in insulator-based EK (iEK) systems for separating a binary mixture of spherical microparticles with same diameter (5.1 μm), same shape, made from the same substrate material and only differing in their zeta potential by ∼14 mV. This study presents a combination of mathematical modeling and experimental separations performed by applying a low-frequency alternating current (AC) voltage in iEK systems with 12 distinct post arrangements. These iEK devices were used to systematically study the effect of three spatial characteristics of the insulating post array on particle separations: the horizontal separation and the vertical separation between posts, and introducing an offset to the posts arrangement. Through normalization of the spatial separation between the insulating posts with respect to particle diameter, guidelines to improve separation resolution for different particle mixtures possessing similar characteristics were successfully identified. The results indicated that by carefully designing the spatial arrangement of the post array, separation resolution values in the range of 1.4-2.8 can be obtained, illustrating the importance and effect of the arrangement of insulating posts on improving particle separations. This study demonstrates that iEK devices, with effectively designed spatial arrangement of the insulating post arrays, have the capabilities to perform discriminatory separations of microparticles of similar characteristics.
对于用于生物医学和临床应用的微尺度电动(EK)系统的发展,人们的兴趣与日俱增,因为这些系统具有诸如便携性、坚固性、低样品需求和短响应时间等吸引人的特性。目前的工作重点是操控基于绝缘体的EK(iEK)系统中绝缘柱排列的特性,以分离由相同基材制成、直径相同(5.1μm)、形状相同且仅ζ电位相差约14mV的球形微粒二元混合物。本研究通过在具有12种不同柱排列的iEK系统中施加低频交流电(AC)电压,将数学建模与实验分离相结合。这些iEK装置用于系统地研究绝缘柱阵列的三个空间特性对颗粒分离的影响:柱之间的水平间距和垂直间距,以及给柱排列引入偏移。通过将绝缘柱之间的空间间距相对于颗粒直径进行归一化,成功确定了针对具有相似特性的不同颗粒混合物提高分离分辨率的指导原则。结果表明,通过精心设计柱阵列的空间排列,可以获得1.4 - 2.8范围内的分离分辨率值,这说明了绝缘柱排列对改善颗粒分离的重要性和作用。这项研究表明,具有有效设计的绝缘柱阵列空间排列的iEK装置有能力对相似特性的微粒进行区分性分离。