Microfluidics meets MEMS

被引:385
作者
Verpoorte, E [1 ]
De Rooij, NF
机构
[1] Univ Neuchatel, Inst Microtechnol, CH-2007 Neuchatel, Switzerland
[2] Univ Neuchatel, Inst Microtechnol, CH-2007 Neuchatel, Switzerland
关键词
lab-on-a-chip; microfluidics; microfabrication; micromachining; miniaturized total chemical analysis systems; (pTAS); review;
D O I
10.1109/JPROC.2003.813570
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
The use of planar fluidic devices for performing small-volume chemistry was first proposed by analytical chemists, who coined the term "miniaturized total chemical analysis systems" (muTAS)for this concept. More recently, the muTAS field has begun to encompass other areas of chemistry and biology. To reflect this expanded scope, the broader terms "microfluidics" and "lab-on-a-chip" are now often used in addition to muTAS. Most microfluidics researchers rely on micromachining technologies at least to some extent to produce microflow systems based on interconnected micrometer-dimensioned channels. As members of the microelectromechanical systems (MEMS) community know, however one can do more with these techniques. It is possible to impart higher levels of functionality by making features in different materials and at different levels within a microfluidic device. Increasingly, researchers have considered how to integrate electrical or electrochemical function into chips for purposes as diverse as heating, temperature sensing, electrochemical detection, and pumping. MEMS processes applied to new materials have also resulted in new approaches for fabrication of microchannels. This review paper explores these and other developments that have emerged from the increasing interaction between the MEMS and microfluidics worlds.
引用
收藏
页码:930 / 953
页数:24
相关论文
共 216 条
  • [31] An atmospheric pressure dc glow discharge on a microchip and its application as a molecular emission detector
    Eijkel, JCT
    Stoeri, H
    Manz, A
    [J]. JOURNAL OF ANALYTICAL ATOMIC SPECTROMETRY, 2000, 15 (03) : 297 - 300
  • [32] Micromachined heated chemical reactor for pre-column derivatisation
    Eijkel, JCT
    Prak, A
    Cowen, S
    Craston, DH
    Manz, A
    [J]. JOURNAL OF CHROMATOGRAPHY A, 1998, 815 (02) : 265 - 271
  • [33] 3D-microstructure replication processes using UV-curable acrylates
    Elsner, C
    Dienelt, J
    Hirsch, D
    [J]. MICROELECTRONIC ENGINEERING, 2003, 65 (1-2) : 163 - 170
  • [34] Microfabricated 384-lane capillary array electrophoresis bioanalyzer for ultrahigh-throughput genetic analysis
    Emrich, CA
    Tian, HJ
    Medintz, IL
    Mathies, RA
    [J]. ANALYTICAL CHEMISTRY, 2002, 74 (19) : 5076 - 5083
  • [35] MICROMACHINING OF CAPILLARY ELECTROPHORESIS INJECTORS AND SEPARATORS ON GLASS CHIPS AND EVALUATION OF FLOW AT CAPILLARY INTERSECTIONS
    FAN, ZH
    HARRISON, DJ
    [J]. ANALYTICAL CHEMISTRY, 1994, 66 (01) : 177 - 184
  • [36] On-chip generation and detection of electrochemiluminescence
    Fiaccabrino, GC
    de Rooij, NF
    Koudelka-Hep, M
    [J]. ANALYTICA CHIMICA ACTA, 1998, 359 (03) : 263 - 267
  • [37] Interdigitated microelectrode arrays based on sputtered carbon thin-films
    Fiaccabrino, GC
    Tang, XM
    Skinner, N
    deRooij, NF
    KoudelkaHep, M
    [J]. SENSORS AND ACTUATORS B-CHEMICAL, 1996, 35 (1-3) : 247 - 254
  • [38] A microfabricated device for rapid protein identification by microelectrospray ion trap mass spectrometry
    Figeys, D
    Ning, YB
    Aebersold, R
    [J]. ANALYTICAL CHEMISTRY, 1997, 69 (16) : 3153 - 3160
  • [39] Silicon microtechnology and microstructures in separation science
    Fintschenko, Y
    van den Berg, A
    [J]. JOURNAL OF CHROMATOGRAPHY A, 1998, 819 (1-2) : 3 - 12
  • [40] FINTSCHENKO Y, 1998, MICRO TOTAL ANAL SYS, P327