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Electrochromatography high-performance liquid chromatography

Gusev, I., Huang, X., Horvath, C. (1999). Capillary columns with in situ formed porous monolithic packing for micro high-performance liquid chromatography and capillary electrochromatography. J. Chromatogr. A 855, 273-290. [Pg.172]

This review provides an overview of the literature published to date on macrocyclic antibiotics exploited for enantioselective separations in high-performance liquid chromatography (HPLC). It was not intended as a comprehensive issue on the applications of such antibiotics in sub- and supercritical fluid chromatography (SFC), thin layer chromatography (TLC), capillary electrophoresis (CE), and capillary electrochromatography (CEC). A number of structural properties of the most important macrocyclic antibiotics applied in HPLC enantioseparations are listed in Table 2.1. [Pg.111]

Reilly, J., and Saeed, M. (1998). Capillary electrochromatography as an alternative separation technique to high-performance liquid chromatography and capillary zone electrophoresis for the determination of drug related impurities in Lilly compound LY300164. /. Chromatogr. A 829, 175-186. [Pg.314]

Freitag, R. (2004). Comparison of the chromatographic behavior of monolithic capillary columns in capillary electrochromatography and nano-high-performance liquid chromatography. J. Chromatogr. A 1033, 267-273. [Pg.471]

Ratnayake, C. K., Oh, C. S., and Henry, M. P. (2000). Particle loaded monolithic sol-gel columns for capillary electrochromatography a new dimension for high performance liquid chromatography. J. High Resolut. Chromatogr. 23, 81-88. [Pg.472]

In addition to high-performance liquid chromatography (HPLC), the chiral resolution using CMPAs was also carried out by supercritical fluid chromatography (SFC) [91] and capillary electrochromatography (CEC) [92-98]. Salvador et al. [91] used dimethylated /1-cyclodextrin as the mobile phase additive on porous graphite carbon as the solid phase for the chiral resolution of tofizopam, warfarin, a benzoxazine derivative, lorazepam, flurbiprofen, temazepam, chlorthalidone, and methyl phehydantoin by SFC. The authors also studied the effect of the concentration of dimethylated /1-cyclodextrin, the concentration of the mobile phase, the nature of polar modifiers, outlet pressure, and the column temperature on the chiral resolution. [Pg.366]

J. Jiskra, H. A. Claessens, C. A. Cramers, and R. Kaliszan, Qnantitative structure-retention relationships in comparative stndies of behavior of stationary phases under high-performance liquid chromatography and capillary electrochromatography conditions, / Chromatogr. A 977 (2002), 193-206. [Pg.530]

Legido-Quigley C, Marlin ND, Mehn V, Manz A, and Smith NW. Advances in capillary electrochromatography and micro-high performance liquid chromatography monolithic colunms for separation science. Electrophoresis 2003 24 917-944. [Pg.60]

The developments of the Lewis base-modified zirconia and mixed-oxide containing zirconia as stationary phases for high-performance liquid chromatography (HPLC) are reviewed. In this context, the preparation methods of porous spherical zirconia, and zirconia supports for HPLC based on modification with fluoride, phosphate, phos-phonate, carboxylic acid, phenols, and protein, as well as cyclodextrin derivative, are covered. The application of modified-zirconia in capillary electrochromatography (CEC) is also discussed. [Pg.914]

Krause, K. Girod, M. Chankvetadze, B. Blaschke, G. Enantioseparations in normal- and reversed-phase nano-high-performance liquid chromatography and capillary electrochromatography using polyacrylamide and polysaccharide derivatives as chiral stationary phases. J. Chromatography A 1999, 837 (1-2), 51-63. [Pg.76]


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Electrochromatography

Electrochromatography chromatography

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