Niu Jiaqi, Lin Shujing, Xu Yichong, Tong Siyu, Wang Zhitao, Cui Shengsheng, Liu Yanlei, Chen Di, Cui Daxiang
School of Electronic Information and Electrical Engineering, Shanghai Jiao Tong University, Shanghai, 200240, PR China.
School of Electronic Information and Electrical Engineering, Shanghai Jiao Tong University, Shanghai, 200240, PR China; Shanghai Engineering Research Center for Intelligent Diagnosis and Treatment Instrument, Shanghai Jiao Tong University, Shanghai, 200240, PR China.
Talanta. 2024 Nov 1;279:126585. doi: 10.1016/j.talanta.2024.126585. Epub 2024 Jul 19.
The separation of target microparticles using microfluidic systems owns extensive applications in biomedical, chemical, and materials science fields. Integration of microfluidic sorting systems employing dielectrophoresis (DEP) technology has been widely investigated. However, enhancing separation efficiency, purity, stability, and integration remains a pressing issue. This study proposes a stepwise multi-stage continuous DEP separation microfluidic chip with a microfilter structure. By leveraging a stepwise electrode configuration, a gradient electric field is generated to drive target microparticles along the electric field gradient, thereby enhancing separation efficiency. Innovative integration of a microfilter structure facilitates simultaneous filtration and improves flow field distribution, thus enhancing system stability. Through the synergistic effect of stepwise electrodes and the microfilter structure, superior coupling of electric and flow fields is achieved, consequently improving the sorting purity, separation efficiency, and system stability of the DEP-based microfluidic sorting system. Validation through simulation and separation of polystyrene microspheres demonstrates the excellent particle separation performance of the proposed system. It evidently shows potential for seamless extension to various biological microparticle sorting applications, harboring significant prospects in the biomedical domain field.
利用微流控系统分离目标微粒在生物医学、化学和材料科学领域有着广泛的应用。采用介电泳(DEP)技术的微流控分选系统的集成已得到广泛研究。然而,提高分离效率、纯度、稳定性和集成度仍然是一个紧迫的问题。本研究提出了一种具有微滤结构的逐步多阶段连续DEP分离微流控芯片。通过采用逐步电极配置,产生梯度电场以驱动目标微粒沿电场梯度移动,从而提高分离效率。微滤结构的创新集成有助于同时进行过滤并改善流场分布,从而提高系统稳定性。通过逐步电极和微滤结构的协同作用,实现了电场和流场的优异耦合,从而提高了基于DEP的微流控分选系统的分选纯度、分离效率和系统稳定性。通过对聚苯乙烯微球的模拟和分离验证,证明了所提出系统具有优异的颗粒分离性能。它显然显示出无缝扩展到各种生物微粒分选应用的潜力,在生物医学领域具有重大前景。