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一种用于离心场驱动的可变形液滴分离的开放式错流微流控芯片。

An Open-Type Crossflow Microfluidic Chip for Deformable Droplet Separation Driven by a Centrifugal Field.

作者信息

Li Zekun, Cai Yongchao, Wei Xiangfu, Sun Cuimin, Luo Wenshen, You Hui

机构信息

School of Mechanical Engineering, Guangxi University, Nanning 530004, China.

College of Automotive Engineering, Guangxi Transport Vocational and Technical College, Nanning 530023, China.

出版信息

Micromachines (Basel). 2025 Jun 30;16(7):774. doi: 10.3390/mi16070774.

Abstract

This study presents an innovative wedge-shaped inlet weir-type microfluidic chip designed to address common issues of clogging and inefficiency in microfiltration processes. Driven solely by centrifugal force, the chip integrates a crossflow separation mechanism and enables selective droplet sorting based on size, without the need for external pumps. Fabricated from PMMA, the device features a central elliptical chamber, a wedge-shaped inlet, and spiral microchannels. These structures leverage shear stress and Dean vortices under centrifugal fields to achieve high-throughput separation of droplets with different diameters. Using water-in-oil emulsions as a model system, we systematically investigated the effects of geometric parameters and rotational speed on separation performance. A theoretical model was developed to derive the critical droplet size based on force balance, accounting for centrifugal force, viscous drag, pressure differentials, and surface tension. Experimental results demonstrate that the chip can effectively separate droplets ranging from 0 to 400 μm in diameter at 200 rpm, achieving a sorting efficiency of up to 72% and a separation threshold (cutoff accuracy) of 98.2%. Fluorescence analysis confirmed the absence of cross-contamination during single-chip operation. This work offers a structure-guided, efficient, and contamination-free droplet sorting strategy with broad potential applications in biomedical diagnostics and drug screening.

摘要

本研究提出了一种创新的楔形入口堰式微流控芯片,旨在解决微滤过程中常见的堵塞和效率低下问题。该芯片仅由离心力驱动,集成了错流分离机制,能够基于尺寸对液滴进行选择性分选,无需外部泵。该装置由聚甲基丙烯酸甲酯(PMMA)制成,具有一个中央椭圆形腔室、一个楔形入口和螺旋形微通道。这些结构利用离心场下的剪切应力和迪恩涡旋,实现不同直径液滴的高通量分离。以油包水乳液为模型系统,我们系统地研究了几何参数和转速对分离性能的影响。基于力平衡,考虑离心力、粘性阻力、压差和表面张力,建立了一个理论模型来推导临界液滴尺寸。实验结果表明,该芯片在200转/分钟的转速下能够有效分离直径为0至400μm的液滴,分选效率高达72%,分离阈值(截止精度)为98.2%。荧光分析证实了单芯片操作过程中不存在交叉污染。这项工作提供了一种结构导向、高效且无污染物的液滴分选策略,在生物医学诊断和药物筛选中具有广泛的潜在应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/accd/12300070/41228d2840b1/micromachines-16-00774-g001.jpg

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