High-throughput microparticle separation using gradient traveling wave dielectrophoresis

被引:31
|
作者
Choi, Eunpyo [2 ]
Kim, Byungkyu [1 ]
Park, Jungyul [2 ]
机构
[1] Korea Aerosp Univ, Sch Aerosp & Mech Engn, Goyang 412791, Gyeonggi Do, South Korea
[2] Sogang Univ, Seoul 121742, South Korea
关键词
FIELD-FLOW-FRACTIONATION; CELL-SEPARATION; ELECTRODE ARRAYS; MANIPULATION; PARTICLES; ELECTROROTATION; SYSTEM; FORCES;
D O I
10.1088/0960-1317/19/12/125014
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
This paper describes highly efficient and high-throughput microparticle separation using gradient traveling wave dielectrophoresis (TwDEP) with a multilayered microelectrode design. Although cell separation based on dielectrophoresis is a very useful and versatile method, its throughput is less than that of a commercially available magnetic activated cell sorter (MACS). Further, in TwDEP-based cell sorters, the microdevices must have a large area to achieve high-throughput separation. However, increasing the TwDEP device area, which is critical for achieving throughput, has limitations: the resistance of microelectrodes also increases. In this study, we have successfully developed a novel gradient TwDEP chip with an extremely large area (31 x 25 mm(2)) using a unique multilayered bus bar design. The proposed bus bar design, which divides four ac input signals into two groups (0 degrees and 270 degrees phases and 90 degrees and 180 degrees phases), makes it possible to maintain low resistance in microelectrodes for TwDEP despite the increase in the device area. In addition, a microelectrode track design with gradually increasing gaps from 10 to 40 mu m between the electrodes was introduced; as a result, the TwDEP force and negative DEP force that balance the gravitational force decrease gradually along the microelectrode track. Finally, the microparticles could be trapped at specific locations depending on their physical properties. We demonstrated the feasibility of our suggestion using latex microparticles (3 mu m, 6 mu m, 10 mu m and 20 mu m) and showed the potential of high-throughput separation with the TwDEP technique.
引用
收藏
页数:10
相关论文
共 50 条
  • [21] Microparticle encoding technologies for high-throughput multiplexed suspension assays
    Birtwell, Sam
    Morgan, Hywel
    INTEGRATIVE BIOLOGY, 2009, 1 (5-6) : 345 - 362
  • [22] High-throughput single-microparticle imaging flow analyzer
    Goda, Keisuke
    Ayazi, Ali
    Gossett, Daniel R.
    Sadasivam, Jagannath
    Lonappan, Cejo K.
    Sollier, Elodie
    Fard, Ali M.
    Hur, Soojung Claire
    Adam, Jost
    Murray, Coleman
    Wang, Chao
    Brackbill, Nora
    Di Carlo, Dino
    Jalali, Bahram
    PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2012, 109 (29) : 11630 - 11635
  • [23] High-Throughput Cell and Particle Characterization Using Isodielectric Separation
    Vahey, M. D.
    Voldman, J.
    ANALYTICAL CHEMISTRY, 2009, 81 (07) : 2446 - 2455
  • [24] Manipulation of bioparticles using traveling wave dielectrophoresis: numerical approach
    H. Du
    W. H. Li
    D. F. Chen
    C. Shu
    International Journal of Mechanics and Materials in Design, 2004, 1 (2) : 115 - 130
  • [25] High-throughput activity screening and sorting of single catalyst particles with a droplet microreactor using dielectrophoresis
    Anne-Eva Nieuwelink
    Jeroen C. Vollenbroek
    Roald M. Tiggelaar
    Johan G. Bomer
    Albert van den Berg
    Mathieu Odijk
    Bert M. Weckhuysen
    Nature Catalysis, 2021, 4 : 1070 - 1079
  • [26] High-throughput activity screening and sorting of single catalyst particles with a droplet microreactor using dielectrophoresis
    Nieuwelink, Anne-Eva
    Vollenbroek, Jeroen C.
    Tiggelaar, Roald M.
    Bomer, Johan G.
    van den Berg, Albert
    Odijk, Mathieu
    Weckhuysen, Bert M.
    NATURE CATALYSIS, 2021, 4 (12) : 1070 - 1079
  • [27] A high-throughput dielectrophoresis-based cell electrofusion microfluidic device
    Hu, Ning
    Yang, Jun
    Yin, Zheng-Qin
    Ai, Ye
    Qian, Shizhi
    Svir, Irina B.
    Xia, Bin
    Yan, Jia-Wen
    Hou, Wen-Sheng
    Zheng, Xiao-Lin
    ELECTROPHORESIS, 2011, 32 (18) : 2488 - 2495
  • [28] High-throughput sorting of nanoparticles with light-patterned dielectrophoresis force
    Qiu, Yuheng
    Wei, Shan
    Li, Jiachang
    Zhang, Zihao
    Gong, Lei
    He, Liqun
    OPTICS EXPRESS, 2023, 31 (25) : 41026 - 41033
  • [29] A planar dielectrophoresis-based chip for high-throughput cell pairing
    Wu, ChunHui
    Chen, RiFei
    Liu, Yu
    Yu, ZhenMing
    Jiang, YouWei
    Cheng, Xing
    LAB ON A CHIP, 2017, 17 (23) : 4008 - 4014
  • [30] High-throughput, single-stream microparticle focusing using a microchannel with asymmetric sharp corners
    Liang-Liang Fan
    Yu Han
    Xu-Kun He
    Liang Zhao
    Jiang Zhe
    Microfluidics and Nanofluidics, 2014, 17 : 639 - 646