Microchip devices for high-efficiency separations

被引:187
|
作者
Culbertson, CT [1 ]
Jacobson, SC [1 ]
Ramsey, JM [1 ]
机构
[1] Oak Ridge Natl Lab, Oak Ridge, TN 37831 USA
关键词
D O I
10.1021/ac0006268
中图分类号
O65 [分析化学];
学科分类号
070302 ; 081704 ;
摘要
We have fabricated a 25-cm-long spiral-shaped separation channel on a glass microchip with a footprint of only 5 cm x 5 cm. Electrophoretic separation efficiencies for dichlorofluoroscein (DCF) on this chip exceeded 1 000 000 theoretical plates and were achieved in under 46 s at a detection point 22.2 cm from the injection cross. The number of theoretical plates increased linearly with the applied voltage, and at a separation field strength of 1170 V/cm, the rate of plate generation was similar to 21 000 plates/s. The large radii of curvature of the turns minimized the analyte dispersion introduced by the channel geometry as evidenced by the fact that the effective diffusion coefficient of DCF was within a few percent of that measured on a microchip with a straight separation channel over a wide range of electric field strengths. A micellar electrokinetic chromatography separation of 19 tetramethylrhodamine-labeled amino acids was accomplished in 165 s with an average plate number of 280 000. The minimum resolution between adjacent peaks for this separation was 1.2.
引用
收藏
页码:5814 / 5819
页数:6
相关论文
共 50 条
  • [21] RADIOCHEMICAL AND ISOTOPE SEPARATIONS BY HIGH-EFFICIENCY LIQUID-LIQUID CHROMATOGRAPHY
    HORWITZ, EP
    DELPHIN, WH
    BLOOMQUIST, CAA
    VANDEGRIFT, GF
    JOURNAL OF CHROMATOGRAPHY, 1976, 125 (01): : 203 - 218
  • [22] Coated microfluidic devices for improved chiral separations in microchip electrophoresis
    Ludwig, M
    Belder, D
    ELECTROPHORESIS, 2003, 24 (15) : 2481 - 2486
  • [23] Monolithic silica columns for high-efficiency separations by high-performance liquid chromatography
    Ishizuka, N
    Kobayashi, H
    Minakuchi, H
    Nakanishi, K
    Hirao, K
    Hosoya, K
    Ikegami, T
    Tanaka, N
    JOURNAL OF CHROMATOGRAPHY A, 2002, 960 (1-2) : 85 - 96
  • [24] High-efficiency polymer-based electrophosphorescent devices
    Gong, X
    Robinson, MR
    Ostrowski, JC
    Moses, D
    Bazan, GC
    Heeger, AJ
    ADVANCED MATERIALS, 2002, 14 (08) : 581 - 585
  • [25] High-efficiency polymer-based electrophosphorescent devices
    Gong, X.
    Robinson, M.R.
    Ostrowski, J.C.
    Moses, D.
    Bazan, G.C.
    Heeger, A.J.
    2002, Wiley-VCH Verlag (14)
  • [26] High-efficiency organic photoelectric devices with metal nanoparticles
    Xie, Wen-Fa
    Xu, Kai
    Li, Yang
    Wen, Xue-Mei
    Zhang, Le-Tian
    Faguang Xuebao/Chinese Journal of Luminescence, 2013, 34 (05): : 535 - 541
  • [27] Overview of high-efficiency organic photovoltaic materials and devices
    Liu, Xuxu
    Chen, Huajie
    Tan, Songting
    RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2015, 52 : 1527 - 1538
  • [28] Ultrathin Membranes with a Polymer/Nanofiber Interpenetrated Structure for High-Efficiency Liquid Separations
    Ji, Yufan
    Chen, Guining
    Liu, Guozhen
    Zhao, Jing
    Liu, Gongping
    Gu, Xuehong
    Jin, Wanqin
    ACS APPLIED MATERIALS & INTERFACES, 2019, 11 (40) : 36717 - 36726
  • [29] Counting single chromophore molecules for ultrasensitive analysis and separations on microchip devices
    Fister, JC
    Jacobson, SC
    Davis, LM
    Ramsey, JM
    ANALYTICAL CHEMISTRY, 1998, 70 (03) : 431 - 437
  • [30] Characterization of microchip separations
    Minalla, A
    Bousse, L
    MICROFLUIDIC DEVICES AND SYSTEMS III, 2000, 4177 : 134 - 141