Interplay of electric field and pressure-driven flow inducing microfluidic particle migration

被引:3
|
作者
Abdorahimzadeh, Seyedamirhosein [1 ]
Pratiwi, Feby W. [1 ]
Vainio, Seppo J. [1 ]
Liimatainen, Henrikki [2 ]
Elbuken, Caglar [1 ,3 ,4 ,5 ]
机构
[1] Univ Oulu, Fac Biochem & Mol Med, Dis Networks Res Unit, POB 5400, FI-90014 Oulu, Finland
[2] Univ Oulu, Fac Technol, Fiber & Particle Engn Res Unit, POB 4300, FI-90014 Oulu, Finland
[3] Univ Oulu, Fac Med, Biomed Res Unit, POB 5000, FI-90014 Oulu, Finland
[4] Aapistie 7A, Oulu 90220, Finland
[5] Univ Oulu, Fac Biochem & Mol Med, POB 5400, FI-90014 Oulu, Finland
关键词
Microfluidics; Lateral migration; Particle separation; Electric field; Pressure-driven flow; Electrokinetics; INERTIAL MIGRATION; COLLOIDAL PARTICLES; POISEUILLE FLOW; RIGID SPHERES; LIFT;
D O I
10.1016/j.ces.2023.118754
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
The lateral migration of colloidal particles inside a microfluidic channel has gained attention due to being both fundamentally intriguing and applicable for particle separation, such as cancer cell isolation or extracellular vesicle purification. Applying an external electric field combined with a pressure-driven flow induces such lateral migrations. In this study, new modes of lateral particle migration have been found by experimentally investi-gating 6 mu m particles in the co-presence of electric field and pressure-driven flow. The experiments revealed the importance of the relative strengths of electric field and pressure gradient in determining particle lateral posi-tioning. We hypothesize that the nonuniformity of the polarization caused by the external electric field and the rotation of the particle due to the background pressure-driven flow result in these modes of transverse migration. These new migration patterns are further utilized to perform microparticle separation and, more importantly, present a novel separation modality.
引用
收藏
页数:6
相关论文
共 50 条
  • [41] Pressure-driven flow of solid helium
    Day, J
    Beamish, J
    PHYSICAL REVIEW LETTERS, 2006, 96 (10)
  • [42] Pressure-driven flow in thin domains
    Fabricius, John
    Miroshnikova, Elena
    Tsandzana, Afonso
    Wall, Peter
    ASYMPTOTIC ANALYSIS, 2020, 116 (01) : 1 - 26
  • [43] PRESSURE-DRIVEN SUPERFLUID HELIUM FLOW
    NOTARYS, HA
    PHYSICAL REVIEW LETTERS, 1969, 22 (23) : 1240 - &
  • [44] Analytical determination of electric voltage for pressure-driven flow through complex microchannels
    Zhu, Q. (mcszqy@mail.sysu.edu.cn), 1600, Binary Information Press, 65 Weed Ave, Norwalk, CT 06850, United States (06):
  • [45] A Comparison of Electric-Field-Driven and Pressure-Driven Fiber Generation Methods for Drug Delivery
    Ahmed, Jubair
    Matharu, Rupy Kaur
    Shams, Talayeh
    Illangakoon, Upulitha Eranka
    Edirisinghe, Mohan
    MACROMOLECULAR MATERIALS AND ENGINEERING, 2018, 303 (05)
  • [46] Effect of electrical double layer on electric conductivity and pressure drop in a pressure-driven microchannel flow
    Ban, Heng
    Lin, Bochuan
    Song, Zhuorui
    BIOMICROFLUIDICS, 2010, 4 (01):
  • [47] Microfluidic Transportation Control of Larval Zebrafish through Optomotor Regulations under a Pressure-Driven Flow
    Panigrahi, Bivas
    Chen, Chia-Yuan
    MICROMACHINES, 2019, 10 (12)
  • [48] Analysis of pressure-driven air bubble elimination in a microfluidic device
    Kang, Joo H.
    Kim, Yu Chang
    Park, Je-Kyun
    LAB ON A CHIP, 2008, 8 (01) : 176 - 178
  • [49] Pressure-driven dynamical microfluidic pumping system for droplet production
    Yu, Chengzhuang
    Wei, Chunyang
    Li, Shanshan
    Meng, Jiyu
    Dai, Shijie
    Li, Junwei
    JOURNAL OF INSTRUMENTATION, 2022, 17 (10):
  • [50] Dispersion studies of pressure-driven flow in deep-reactive-ion-etched microfluidic channels
    Daridon, A
    Gravesen, P
    Dirac, H
    Krog, JP
    Verpoorte, E
    de Rooij, NF
    MICRO TOTAL ANALYSIS SYSTEMS 2000, PROCEEDINGS, 2000, : 303 - 306