Jacobson et al., “Effects of Injection Schemes and Column Geometry on the Performance of Microchip Electrophiresis Devices,” Anal. Chem. (1994) 66:1107-1113. |
Jacobson et al., “High-Speed Separations on a Microchip,” Anal. Chem. (1994) 66:1114-1118. |
Jacobson et al., “Fused Quartz Substrates for Microchip Electrophoresis,” Anal. Chem. (1995) 67:2059-2063. |
Jacobson et al., “Open Channel Electochromatography on a Microchip,” Anal. Chem. (1994) 66:2369-2373. |
Jacobson et al., “Precolumn Reactions with Electrophoretic Analysis Integrated on a Microchip,” Anal. Chem. (1994) 66:4127-4132. |
Jacobson et al., “Microchip electrophoresis with sampling stacking,” Electrophoresis (1995) 16:481-486. |
Manz et al., “Electroosmotic pumping and electrophoretic separations for miniaturized chemical analysis systems,” J. Micromech. Microeng. (1994) 4:247-265. |
Ramsey et al., “Microfabricated chemical measurement systems,” Nature Medicine, 1995) 1: 1093-1096. |
Seiler et al., “Electroosmotic Pumping and Valveless Control of Fluid Flow within a Manifold of Capillaries on a Glass Chip,” Anal. Chem. (1994) 66:3485-3491. |
Dasgupta et al., “Electroosmosis: A Reliable Fluid Propulsion System for Flow Injection Analysis,” Anal. Chem. (1994) 66:1792-1798. |
Linhares et al., “Use of an On-Column Fracture in Capillary Zone Electroporesis for Sample Introduction,” Anal. Chem. (1991) 63:2076-2078. |
Bao et al., “Ultramicro enzyme assays in a capillary electrophoretic system,” J. Chromatography (1992) 608:217-224. |
Effenhauser, “Glass Chips for High-Speed Capillary Electrophoresis Separations with Submicrometer Plate Heights,” Anal. Chem. (1993) 65:2637-2642. |
Fan et al., “Micromachining of Capillary Electrophoresis Injectors and Separators on Glass Chips and Evaluaiton of Flow at Capillary Intersections,” Anal. Chem. (1994) 66:177-184. |
Harmon et al., “Mathematical Treatment of Electrophoretically Medicated Microanalysis,” Anal. Chem. (1993) 65:2655-2662. |
Harmon et al., “Selectivity in Electrophoretically Mediated Microanalysis by Control of Porduct Detection Time,” Anal. Chem. (1994) 66:3797-3805. |
Harrison et al., “Capillary Electrophoresis and Sample Injection Systems Integated on a Planar Glass Chip,” Anal. Chem. (1992) 64:1926-1932. |
Harrison et al., “Micromachining a Miniaturized Capillary Electrophoresis-based Chemical Analysis System on a Chip,” Science (1993) 261:895-897. |
Manz et al., “Planar chips technology for miniaturization and integratoin of separation techniques into monitoring system / Capillary electrophoresis on a chip,” J. Chromatography (1992) 593:253-258. |
Manz et al., “Miniaturized Total Chemical Analysis Systems: a Novel Concept for Chemical Sensing,” Sensors and Actuators (1990) B1:244-248. |
Manz et al., “Micromachining of monocrystalline silicon and glass for chemical analysis systems, A look into next century's technology or just a fashionable craze?” Trends in Analytical Chemistry (1991) 10:144-149. |
Seiler et al., “Planar Glass Chips for Capillary Electrophoresis: Repetitive Sample Injection, Quantitation, and Separation Efficiency,” Anal. Chem. (1993) 65:1481-1488. |
Sandoval et al., “Method for the Accelerated Measurement of Electroosmosis in Chemically Modified Tubes for Capillary Electrophoresis,” Anal. Chem. (1996) 68:2771-2775. |
Svendsen et al., “Separation of Proteins Using Ampholine Carrier Ampholytes as Buffer and Spacer Ions in an Isotachophoresis System,” Science Tools, The KLB Instrument Journal (1970) 17:13-17. |
Kjellin et al., “Isotachophoresis of CSF Proteins in Gel Tubes Especially Gamaglobulins,” J. Neurol. (1979) 221:225-233. |
Kopwillem et al., “Serum Protein Fractionation by Isotachophoresis using Amino Acid Spacers,” Journal of Chromatography (1976) 118:35-46. |
Holloway et al., “The analysis of amino acids and peptides by isotachophoresis,” Electrophoresis (1981) 2:127-134. |