Department of Mechanical Design and Robot Engineering, Seoul National University of Science and Technology, Seoul, 01811, Republic of Korea.
School of Integrative Engineering, Chung-Ang University, Seoul, 06974, Republic of Korea.
Mikrochim Acta. 2024 Nov 12;191(12):738. doi: 10.1007/s00604-024-06824-0.
A viscoelastic flow focusing device is presented that enables simple and robust focusing of submicron-sized particles in the channel center by optimizing operating conditions such as channel length, flow rate and poly(ethylene oxide) (PEO) concentration. Submicron-sized particles (up to 100 nm) can be easily focused to the channel center under viscoelastic fluid flow without any external force via a simply fabricated microchannel with a long channel length and a large square cross-section. The device was fabricated using a common soft lithography technique for the polydimethylsiloxane (PDMS) channel, which has a width of 50 μm, a height of 50 μm and a channel length of 27 cm. The extralong channel enabled submicron-sized particle focusing, even in a channel of a relatively large size with high flow rate, which can realize flow cytometric applications. The focusing performance was first demonstrated using submicron-sized polystyrene (PS) beads ranging from 870 nm to 50 nm and then using biological particles such as E. coli bacteria to demonstrate the biological feasibility of the device. The PS beads, which ranged in diameter from 870 nm to 100 nm, were focused to the center of the channel, achieving over 90% focusing efficiency for beads as small as 510 nm and 62% focusing efficiency for 100-nm beads. The device could also align a bacterial suspension in the center of the channel at flow rates up to 30 µL/min, demonstrating its biological importance. The ability of the developed device to align submicron-sized particles within a narrow flow stream in a highly robust manner is promising for various biological and clinical applications, such as distinguishing pathogenic bacteria and evaluating individual antibiotic responses in a single experiment.
一种黏弹性流聚焦装置,通过优化操作条件(如通道长度、流速和聚环氧乙烷(PEO)浓度),可将亚微米级颗粒简单而稳定地聚焦在通道中心。在黏弹性流体流动下,通过简单制造的具有长通道长度和大正方形横截面的微通道,无需任何外部力即可轻松将亚微米级颗粒(高达 100nm)聚焦到通道中心。该装置采用常见的软光刻技术制造聚二甲基硅氧烷(PDMS)通道,其宽度为 50μm,高度为 50μm,通道长度为 27cm。超长通道使亚微米级颗粒聚焦成为可能,即使在具有高流速的相对较大尺寸的通道中也能实现,这可以实现流式细胞术应用。该聚焦性能首先使用从 870nm 到 50nm 的亚微米级聚苯乙烯(PS)珠粒进行了演示,然后使用诸如大肠杆菌等生物颗粒进行了演示,从而证明了该装置的生物可行性。直径从 870nm 到 100nm 的 PS 珠粒被聚焦到通道中心,对于直径小至 510nm 的珠粒,聚焦效率超过 90%,对于 100nm 的珠粒,聚焦效率达到 62%。该装置还可以将细菌悬浮液在高达 30μL/min 的流速下对准通道中心,证明了其生物学重要性。该开发装置以高度稳健的方式在狭窄的流道内对准亚微米级颗粒的能力,为各种生物和临床应用提供了广阔的前景,例如在单个实验中区分致病细菌和评估个体抗生素反应。