Microparticle concentration and separation by traveling-wave dielectrophoresis (twDEP) for digital microfluidics

被引:53
|
作者
Zhao, Yuejun [1 ]
Yi, Ui-Chong [2 ]
Cho, Sung Kwon [1 ]
机构
[1] Univ Pittsburgh, Dept Mech Engn & Mat Sci, Pittsburgh, PA 15261 USA
[2] Core Microsolut Inc, Los Angeles, CA 90024 USA
基金
美国国家科学基金会;
关键词
digital microfluidics; electrowetting on dielectric (EWOD); lab-on-a-chip; traveling wave dielectrophoresis (tw DEP);
D O I
10.1109/JMEMS.2007.906763
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 in-droplet particle concentration and separation where particles are concentrated and separated into droplets by traveling-wave dielectrophoresis (DEP) and subsequent electrowetting-on-dielectric droplet splitting. A successful concentration for 5-mu m aldehyde sulfate (AS) latex particles was experimentally achieved using microfabricated devices, showing that 98% of the total particles were concentrated into a split daughter droplet. In addition, in-droplet particle separation was successfully achieved using the following two different cases of particle mixtures: case 4) a mixture of 5-mu m AS latex beads and 8-mu m glass beads; and case 2) a mixture of ground pine (GP) spores and 8-mu m glass beads. In case 1), 97% of the total AS beads were separated into one split droplet and 77% of the total glass beads into the other split droplet. In case 2), over 92% of the GP spores were separated into a split daughter droplet, whereas 86% of the glass beads were separated into the other split daughter droplet. In all these concentration and separation experiments, the applied frequency and the conductivity medium are key parameters influencing the concentration and separation performance, which have been optimally determined by measuring the DEP and electrorotation spectra of the used particles prior to the concentration and separation experiments. This integrated in-droplet separation and concentration method may provide an additional functionality to digital microfluidics.
引用
收藏
页码:1472 / 1481
页数:10
相关论文
共 43 条
  • [31] 4GHZ TO 12GHZ BAND TRAVELING-WAVE TUBES FOR DIGITAL RADIO TRANSMITTERS
    TOMIKAWA, K
    ITAGAKI, Y
    KIMURA, T
    NEC RESEARCH & DEVELOPMENT, 1985, (76): : 91 - 96
  • [32] RESPONSE SPEED OF ANALOG-DIGITAL CONVERTERS WITH ELECTRO-OPTIC TRAVELING-WAVE MODULATORS.
    Baglikov, V.B.
    Dianova, V.A.
    Mustel', Ye.R.
    Parygin, V.N.
    Soviet journal of communications technology & electronics, 1987, 32 (05): : 103 - 109
  • [33] Traveling-wave tube amplifier performance evaluation and design optimization for applications in digital communications with multilevel modulations
    Qiu, JX
    Abe, DK
    Antonsen, TM
    Danly, BG
    Levush, B
    IEEE TRANSACTIONS ON MICROWAVE THEORY AND TECHNIQUES, 2003, 51 (08) : 1911 - 1919
  • [34] PARTICLE SEPARATION BY EMPLOYING NON-UNIFORM ELECTRIC FIELDS, TRAVELING-WAVE ELECTRIC FIELDS AND INCLINED GRAVITY
    Eguchi, Masanori
    Imasato, Hiroko
    Yamakawa, Takeshi
    INTELLIGENT AUTOMATION AND SOFT COMPUTING, 2012, 18 (02): : 121 - 137
  • [35] Numerical Implementation of Traveling-Wave Solutions in Heterogeneous Media with Two Pressures Taking into Account the Volume Concentration of Particles
    Fedorov, A. V.
    Bedarev, I. A.
    PROCEEDINGS OF THE XXV CONFERENCE ON HIGH-ENERGY PROCESSES IN CONDENSED MATTER (HEPCM 2017), 2017, 1893
  • [36] Experimental analysis of microwave loss due to substrate carrier concentration in traveling-wave electro-optic modulators
    Khazaei, HR
    Berolo, O
    Wang, W
    Maigné, P
    Young, M
    Ozard, K
    Reeves, M
    Ghannouchi, FM
    APPLICATIONS OF PHOTONIC TECHNOLOGY 3, 1998, 3491 : 90 - 95
  • [37] Traveling-wave tube amplifier performance evaluation and design optimization for applications in multi-level digital communications
    Qiu, J
    Abe, D
    Antonsen, TM
    Danly, BG
    Levush, B
    2002 IEEE MTT-S INTERNATIONAL MICROWAVE SYMPOSIUM DIGEST, VOLS 1-3, 2002, : 457 - 460
  • [38] Modeling Widely Tunable Sampled-Grating DBR Lasers Using Traveling-Wave Model With Digital Filter Approach
    Dong, Lei
    Zhang, Ruikang
    Wang, Dingli
    Zhao, Shengzhi
    Jiang, Shan
    Yu, Yonglin
    Liu, Shuihua
    JOURNAL OF LIGHTWAVE TECHNOLOGY, 2009, 27 (15) : 3181 - 3188
  • [39] An FPGA-Based Digital Real-Time Simulator for Hardware-in-the-Loop Testing of Traveling-Wave Relays
    Mirzahosseini, Ramin
    Iravani, Reza
    Zhang, Yi
    IEEE TRANSACTIONS ON POWER DELIVERY, 2020, 35 (06) : 2621 - 2629
  • [40] On traveling-wave field-effect flow control for simultaneous induced-charge electroosmotic pumping and mixing in microfluidics: physical perspectives and theoretical analysis
    Liu, Weiyu
    Ren, Yukun
    Tao, Ye
    Li, Yanbo
    Wu, Qisheng
    JOURNAL OF MICROMECHANICS AND MICROENGINEERING, 2018, 28 (05)