beta-, and gamma-amino acids on carbonylbis(N-L-valine isopropyl ester). J Chem Soc Perkin
II:1197–1203
Fernandezsanchez E, Fernandeztorres A, Garciadominguez JA, Santiuste JM (1991) Kovats coefficients for predicting polarities in silicone stationary phases and their mixtures.
Chromatographia 31(1-2):75–79
Focant JF, Sjodin A, Turner WE, Patterson Jr DG (2004) Measurement of selected polybrominated
diphenyl ethers, polybrominated and polychlorinated biphenyls, and organochlorine pesticides
in human serum and milk using comprehensive two-dimensional gas chromatography isotope
dilution time-of-flight mass spectrometry. Anal Chem 76(21):6313–6320
Frank H, Nicholson GJ, Bayer E (1977) Rapid gas chromatographic separation of amino acid
enantiomers with a novel chiral stationary phase. J Chromatogr Sci 15(5):174–176
Frank H, Nicholson GJ, Bayer E (1978) Gas chromatographic—mass spectrometric analysis of
optically active metabolites and drugs on a novel chiral stationary phase. J Chromatogr 146
(2):197–206
Garrison AW, Nzengung VA, Avants JK, Ellington J, Wolfe NL (1997) Determining the environmental enantioselectivity of o,p
0 -DDT and o,p
0 -DDD. Organohalogen Comp 27:323–326
Gil-Av E, Feibush B, Charles-Sigler R (1966a) Gas chromatography. Institute of Petroleum,
London
Gil-Av E, Feibush B, Charles-Sigler R (1966b) Separation of enantiomers by gas liquid chromatography with an optically active stationary phase. Tetrahedron Lett 1009–1015
Grajek H, Witkiewicz Z, Purchala M, Drzewinski W (2016) Liquid crystals as stationary phases in
chromatography. Chromatographia 79(19):1217–1245
Gumustas M, Ozkan SA, Chankvetadze B (2018) Analytical and preparative scale separation of
enantiomers of chiral drugs by chromatography and related methods. Curr Med Chem 25
(33):4152–4188
Hühnerfuss H (2000) Chromatographic enantiomer separation of chiral xenobiotics and their
metabolites—a versatile tool for process studies in marine and terrestrial ecosystems.
Chemosphere 40(9–11):913–919
Hühnerfuss H, Kallenborn R (1992) Chromatographic separation of marine organic pollutants. J
Chromatogr 580(1-2):191–214
Hühnerfuss H, Shah MA (2009) Enantioselective chromatography—A powerful tool for the
discrimination of biotic and abiotic transformation processes of chiral environmental pollutants.
J Chromatogr A 1216(3):481–502
Jones JR, Purnell JH (1990) Prediction of retention ties in serially linked open-tubular gas
chromatographic columns and optimisation of column lengths. Anal Chem 62:2300–2306
Juvancz Z, Alexander G, Szejti J (1988) Cyclodextrins and their derivatives as stationary phases in
GC capillary columns. J High Resolut Chromatogr Chromatogr Commun 11:110–113
Kennedy ER, O’Connor PF, Grote AA (1990) Application of multidimensional gas
chromatography-mass spectrometry to the determination of glycol ethers in air. J Chromatogr
522:303–313
Kim YK, Robyt JF (2000) Enzyme modification of starch granules: formation and retention of
cyclomaltodextrins inside starch granules by reaction of cyclomaltodextrin
glucanosyltransferase with solid granules. Carbohydr Res 328(4):509–515
König WA (1987) The practice of enantiomer separation by capillary gas chromatography. Dr. fred
Hüthig, Heidelberg
König WA (1992) Gas chromatographic enantiomer separation with modified cyclodextrins.
Dr. Afred Hüthig, Heidelberg
König WA, Benecke I (1981) Gas chromatographic separation of enantiomers of amines and amino
alcohols on chiral stationary phases. J Chromatogr 209:91–95
König WA, Nicholson GJ (1975) Glass capillaries for fast gas chromatographic separation of amino
acid enantiomers. Anal Chem 47:951–952
84
5 Enantiomer-Selective High-Resolution Gas Chromatography (esHRGC)
II:1197–1203
Fernandezsanchez E, Fernandeztorres A, Garciadominguez JA, Santiuste JM (1991) Kovats coefficients for predicting polarities in silicone stationary phases and their mixtures.
Chromatographia 31(1-2):75–79
Focant JF, Sjodin A, Turner WE, Patterson Jr DG (2004) Measurement of selected polybrominated
diphenyl ethers, polybrominated and polychlorinated biphenyls, and organochlorine pesticides
in human serum and milk using comprehensive two-dimensional gas chromatography isotope
dilution time-of-flight mass spectrometry. Anal Chem 76(21):6313–6320
Frank H, Nicholson GJ, Bayer E (1977) Rapid gas chromatographic separation of amino acid
enantiomers with a novel chiral stationary phase. J Chromatogr Sci 15(5):174–176
Frank H, Nicholson GJ, Bayer E (1978) Gas chromatographic—mass spectrometric analysis of
optically active metabolites and drugs on a novel chiral stationary phase. J Chromatogr 146
(2):197–206
Garrison AW, Nzengung VA, Avants JK, Ellington J, Wolfe NL (1997) Determining the environmental enantioselectivity of o,p
0 -DDT and o,p
0 -DDD. Organohalogen Comp 27:323–326
Gil-Av E, Feibush B, Charles-Sigler R (1966a) Gas chromatography. Institute of Petroleum,
London
Gil-Av E, Feibush B, Charles-Sigler R (1966b) Separation of enantiomers by gas liquid chromatography with an optically active stationary phase. Tetrahedron Lett 1009–1015
Grajek H, Witkiewicz Z, Purchala M, Drzewinski W (2016) Liquid crystals as stationary phases in
chromatography. Chromatographia 79(19):1217–1245
Gumustas M, Ozkan SA, Chankvetadze B (2018) Analytical and preparative scale separation of
enantiomers of chiral drugs by chromatography and related methods. Curr Med Chem 25
(33):4152–4188
Hühnerfuss H (2000) Chromatographic enantiomer separation of chiral xenobiotics and their
metabolites—a versatile tool for process studies in marine and terrestrial ecosystems.
Chemosphere 40(9–11):913–919
Hühnerfuss H, Kallenborn R (1992) Chromatographic separation of marine organic pollutants. J
Chromatogr 580(1-2):191–214
Hühnerfuss H, Shah MA (2009) Enantioselective chromatography—A powerful tool for the
discrimination of biotic and abiotic transformation processes of chiral environmental pollutants.
J Chromatogr A 1216(3):481–502
Jones JR, Purnell JH (1990) Prediction of retention ties in serially linked open-tubular gas
chromatographic columns and optimisation of column lengths. Anal Chem 62:2300–2306
Juvancz Z, Alexander G, Szejti J (1988) Cyclodextrins and their derivatives as stationary phases in
GC capillary columns. J High Resolut Chromatogr Chromatogr Commun 11:110–113
Kennedy ER, O’Connor PF, Grote AA (1990) Application of multidimensional gas
chromatography-mass spectrometry to the determination of glycol ethers in air. J Chromatogr
522:303–313
Kim YK, Robyt JF (2000) Enzyme modification of starch granules: formation and retention of
cyclomaltodextrins inside starch granules by reaction of cyclomaltodextrin
glucanosyltransferase with solid granules. Carbohydr Res 328(4):509–515
König WA (1987) The practice of enantiomer separation by capillary gas chromatography. Dr. fred
Hüthig, Heidelberg
König WA (1992) Gas chromatographic enantiomer separation with modified cyclodextrins.
Dr. Afred Hüthig, Heidelberg
König WA, Benecke I (1981) Gas chromatographic separation of enantiomers of amines and amino
alcohols on chiral stationary phases. J Chromatogr 209:91–95
König WA, Nicholson GJ (1975) Glass capillaries for fast gas chromatographic separation of amino
acid enantiomers. Anal Chem 47:951–952
84
5 Enantiomer-Selective High-Resolution Gas Chromatography (esHRGC)
