Miniaturization and integration have become strong trends in the development of analytical devices, particularly over the past decade. Miniaturized total analysis systems (lTAS), lab-on-a-chip, and analytical microfluidics are all newly established concepts and methods of realizing such goals, which not only imply the production of portable and wearable analytical devices, but also dramatic enhancements in analysis speed and sample or reagent economy. Various platforms have been developed or adapted for achieving such aims, the most important of which are those based on MEMS (Micro-electromechanical Systems) techniques. However, MEMS techniques have still not quite fulfilled expectations in terms of fully integrating functional sample processing and detection components onto single microdevices. In particular, optical detection components, most commonly employed in analytical systems, have often proved to be too complicated, bulky, and/or costly to be microfabricated and integrated on a chip without sacrificing considerable analytical performance. This is especially true when minimum detection windows and volumes are vital for ensuring optimum performance, as in chip-based capillary electrophoresis (CE) separations, or when highly multiplexed detections are required. In fact, the first few generations of commercialized lab-chip CE products, albeit successful, have not yet attempted on-chip integration of detection components (except for the detection window itself). Among various possible routes towards complete integration, techniques based on liquid-core waveguides (LCW) have recently shown great promise. The state-ofart of CE with LCW is briefly reviewed in this article, and the potential for and perspectives on the miniaturization and integration of CE systems with light-emitting diode (LED)-excited fluorimetric detectors are discussed.
[1]
Wen-Bin Du,et al.
High-throughput nanoliter sample introduction microfluidic chip-based flow injection analysis system with gravity-driven flows.
,
2005,
Analytical chemistry.
[2]
J. Pawliszyn,et al.
Coupling of solid-phase microextraction and capillary isoelectric focusing with laser-induced fluorescence whole column imaging detection for protein analysis.
,
2005,
Analytical chemistry.
[3]
J. Westberg,et al.
A liquid core waveguide fluorescence detector for multicapillary electrophoresis applied to DNA sequencing in a 91‐capillary array
,
2000,
Electrophoresis.
[4]
J. Pawliszyn,et al.
Capillary isoelectric focusing of proteins with liquid core waveguide laser-induced fluorescence whole column imaging detection.
,
2003,
Analytical chemistry.
[5]
J. Olivares,et al.
Liquid core waveguide for full imaging of electrophoretic separations.
,
2002,
Analytical chemistry.
[6]
J. Roeraade,et al.
Laser-induced fluorescence detection by liquid core waveguiding applied to DNA sequencing by capillary electrophoresis.
,
2000,
Analytical chemistry.
[7]
Z. Fang,et al.
A miniaturized liquid core waveguide-capillary electrophoresis system with flow injection sample introduction and fluorometric detection using light-emitting diodes.
,
2001,
Analytical chemistry.
[8]
P. Dasgupta,et al.
Light at the end of the tunnel: recent analytical applications of liquid-core waveguides
,
2004
.