A microfluidic device for array patterning by perpendicular electrokinetic focusing

被引:15
|
作者
Kohlheyer, Dietrich [1 ]
Unnikrishnan, Sandeep [1 ]
Besselink, Geert A. J. [1 ]
Schlautmann, Stefan [1 ]
Schasfoort, Richard B. M. [1 ]
机构
[1] Univ Twente, MESA, NL-7500 AE Enschede, Netherlands
关键词
micro array; laminar-flow; microfluidic; electrokinetic-focusing;
D O I
10.1007/s10404-007-0217-9
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
This paper describes a microfluidic chip in which two perpendicular laminar-flow streams can be operated to sequentially address the surface of a flow-chamber with semi-parallel sample streams. The sample streams can be controlled in position and width by the method of electrokinetic focusing. For this purpose, each of the two streams is sandwiched by two parallel sheath flow streams containing just a buffer solution. The streams are being electroosmotically pumped, allowing a simple chip design and a setup with no moving parts. Positioning of the streams was adjusted in real-time by controlling the applied voltages according to an analytical model. The perpendicular focusing gives rise to overlapping regions, which, by combinatorial (bio) chemistry, might be used for fabrication of spot arrays of immobilized proteins and other biomolecules. Since the patterning procedure is done in a closed, liquid filled flow-structure, array spots will never be exposed to air and are prevented from drying. With this device configuration, it was possible to visualize an array of 49 spots on a surface area of 1 mm(2). This article describes the principle, fabrication, experimental results, analytical modeling and numerical simulations of the microfluidic chip.
引用
收藏
页码:557 / 564
页数:8
相关论文
共 50 条
  • [41] Development-on-chip: in vitro neural tube patterning with a microfluidic device
    Demers, Christopher J.
    Soundararajan, Prabakaran
    Chennampally, Phaneendra
    Cox, Gregory A.
    Briscoe, James
    Collins, Scott D.
    Smith, Rosemary L.
    DEVELOPMENT, 2016, 143 (11): : 1884 - 1892
  • [42] Electrokinetic microfluidic systems
    Bousse, L
    MICROMACHINING AND MICROFABRICATION PROCESS TECHNOLOGY V, 1999, 3874 : 2 - 8
  • [43] Electrokinetic microfluidic systems
    Bousse, L
    MATERIALS AND DEVICE CHARACTERIZATION IN MICROMACHINING II, 1999, 3875 : 2 - 8
  • [44] Electrokinetic microfluidic systems
    Bousse, L
    MEMS RELIABILITY FOR CRITICAL AND SPACE APPLICATIONS, 1999, 3880 : 2 - 8
  • [45] Electrokinetic microfluidic systems
    Bousse, L
    MICROMACHINED DEVICES AND COMPONENTS V, 1999, 3876 : 2 - 8
  • [46] Electrokinetic microfluidic systems
    Bousse, L
    MICROMACHINE TECHNOLOGY FOR DIFFRACTIVE AND HOLOGRAPHIC OPTICS, 1999, 3879 : 2 - 8
  • [47] Electrokinetic microfluidic systems
    Bousse, L
    MINIATURIZED SYSTEMS WITH MICRO-OPTICS AND MEMS, 1999, 3878 : 2 - 8
  • [48] Electrokinetic microfluidic systems
    Bousse, L
    MICROFLUIDIC DEVICES AND SYSTEMS II, 1999, 3877 : 2 - 8
  • [49] Electrokinetic Microfluidic Mixing
    Renaud, Louis
    Kleimann, Pascal
    SENSOR LETTERS, 2011, 9 (06) : 2207 - 2210
  • [50] Sheathless microfluidic particle focusing technique using slanted microstructure array
    Kyongtae Kim
    Hye-Kyoung Seo
    Yong-Jun Kim
    Microfluidics and Nanofluidics, 2014, 16 : 159 - 166