Huang Di, Zhao Yan, Cao Chao, Zhao Jiyun
School of Mechanical and Electrical Engineering, China University of Mining and Technology, Xuzhou 221116, China.
Micromachines (Basel). 2025 Jan 13;16(1):83. doi: 10.3390/mi16010083.
Inertial microfluidics, as an efficient method for the manipulation of micro-/nanoparticles, has garnered significant attention due to its advantages of high throughput, structural simplicity, no need for external fields, and sheathless operation. Common structures include straight channels, contraction-expansion array (CEA) channels, spiral channels, and serpentine channels. In this study, we developed a CEA channel embedded with hook-shaped microstructures to modify the characteristics of vortices. Through experimental studies, we investigated the particles' migration mechanisms within the proposed structure. The findings indicated that, in comparison to conventional rectangular microstructures, the particles within the hook-shaped microstructured CEA channels experienced a more pronounced influence from inertial lift forces. Moreover, the magnitude of the second flow within the novel configuration was directly proportional to the channel width, the length of the expansion segment, and the embedding depth of the microstructure. The innovative structure was subsequently employed for particle trapping, focusing, and separation. The experimental outcomes revealed focusing efficiency of up to 99.1% and sorting efficiency of up to 97%. This research holds the potential to enhance the foundational theory of Dean flows and broaden the application spectrum of inertial contraction-expansion microfluidic chips.
惯性微流控作为一种操纵微/纳米颗粒的有效方法,因其具有高通量、结构简单、无需外部场以及无鞘流操作等优点而备受关注。常见结构包括直通道、收缩-扩张阵列(CEA)通道、螺旋通道和蛇形通道。在本研究中,我们开发了一种嵌入钩形微结构的CEA通道,以改变涡流特性。通过实验研究,我们探究了所提出结构内颗粒的迁移机制。研究结果表明,与传统矩形微结构相比,钩形微结构CEA通道内的颗粒受到惯性升力的影响更为显著。此外,新结构内二次流的大小与通道宽度、扩张段长度以及微结构的嵌入深度成正比。随后,这种创新结构被用于颗粒捕获、聚焦和分离。实验结果显示聚焦效率高达99.1%,分选效率高达97%。本研究有望增强迪恩流的基础理论,并拓宽惯性收缩-扩张微流控芯片的应用范围。