Wang YL, Sun K, Tu YB, Tao ML, Xie ZB, Yuan HK, Xiong ZH, Wang JZ (2018) Chirality
switching of the self-assembled CuPc domains induced by electric field. Phys Chem Chem Phys
20(10):7125–7131
Ward TJ, Farris 3rd AB (2001) Chiral separations using the macrocyclic antibiotics: a review. J
Chromatogr A 906(1–2):73–89
Wong CS (2006) Environmental fate processes and biochemical transformations of chiral emerging
organic pollutants. Anal Bioanal Chem 386(3):544–558
Wu H, Wang D, Song G, Ke Y, Liang X (2014) Novel chiral stationary phases based on peptoid
combining a quinine/quinidine moiety through a C9-position carbamate group. J Sep Sci 37
(8):934–943
Xie SM, Yuan LM (2017) Recent progress of chiral stationary phases for separation of enantiomers
in gas chromatography. J Sep Sci 40(1):124–137
Xu W, Wang X, Cai Z (2013) Analytical chemistry of the persistent organic pollutants identified in
the Stockholm Convention: A review. Anal Chim Acta 790:1–13
Xu M, Tang Z, Duan Y, Liu Y (2016) GC-based techniques for breath analysis: current status,
challenges, and prospects. Crit Rev Anal Chem 46(4):291–304
Xu S, Mo R, Jin C, Cui X, Bai R, Ji Y (2017) Mesoporous silica nanoparticles incorporated hybrid
monolithic stationary phase immobilized with pepsin for enantioseparation by capillary
electrochromatography. J Pharm Biomed Anal 140:190–198
Yang YZ, Liu XF, Zhang RB, Pang SP (2017) Joint experimental and theoretical studies of the
surprising stability of the aryl pentazole upon noncovalent binding to beta-cyclodextrin. Phys
Chem Chem Phys 19(46):31236–31244
Yao B, Yang X, Guo L, Kang S, Weng W (2014) Development of a composite chiral stationary
phase from BSA and beta-cyclodextrin-bonded silica. J Chromatogr Sci 52(10):1233–1238
Yehl PM, O’Brien TP, Moeder CW, Grinberg N, Bicker G, Wyvratt J (2000) Mechanisms of
retention of pyrrolidinyl norephedrine on immobilized alpha(1)-acid glycoprotein. Chirality 12
(3):107–113
Younes AA, Mangelings D, Vander Heyden Y (2011) Chiral separations in normal-phase liquid
chromatography: Enantioselectivity of recently commercialized polysaccharide-based selectors.
Part II. Optimization of enantioselectivity. J Pharm Biomed Anal 56(3):521–537
Yu L, Hong Y, Li L, Jin Y, Zheng M, Jiang H, Zeng S (2012) Enantioselective drug-protein
interaction between mexiletine and plasma protein. J Pharm Pharmacol 64(6):792–801
Yuan LM, Ma W, Xu M, Zhao HL, Li YY, Wang RL, Duan AH, Ai P, Chen XX (2017) Optical
resolution and mechanism using enantioselective cellulose, sodium alginate and hydroxypropylbeta-cyclodextrin membranes. Chirality 29(6):315–324
Zambonin CG (2003) Coupling solid-phase microextraction to liquid chromatography. A review.
Anal Bioanal Chem 375(1):73–80
Zhang ZB, Zhang WG, Luo WJ, Fan J (2008) Preparation and enantioseparation characteristics of a
novel chiral stationary phase based on mono (6(A)-azido-6(A)-deoxy)-per
(p-chlorophenylcarbamoylated) beta-cyclodextrin. J Chromatogr A 1213(2):162–168
Zhang C, Rodriguez E, Bi C, Zheng X, Suresh D, Suh K, Li Z, Elsebaei F, Hage DS (2018) High
performance affinity chromatography and related separation methods for the analysis of biological and pharmaceutical agents. Analyst 143(2):374–391
Zhao Y, Woo G, Thomas S, Semin D, Sandra P (2003) Rapid method development for chiral
separation in drug discovery using sample pooling and supercritical fluid chromatography-mass
spectrometry. J Chromatogr A 1003(1–2):157–166
Zhou J, Pei W, Zheng X, Zhao S, Zhang Z (2015) Preparation and enantioseparation characteristics
of a novel beta-cyclodextrin derivative chiral stationary phase in high-performance liquid
chromatography. J Chromatogr Sci 53(5):676–679
Zhou J, Yang B, Tang J, Tang W (2016) Cationic cyclodextrin clicked chiral stationary phase for
versatile enantioseparations in high-performance liquid chromatography. J Chromatogr A
1467:169–177
References
61
switching of the self-assembled CuPc domains induced by electric field. Phys Chem Chem Phys
20(10):7125–7131
Ward TJ, Farris 3rd AB (2001) Chiral separations using the macrocyclic antibiotics: a review. J
Chromatogr A 906(1–2):73–89
Wong CS (2006) Environmental fate processes and biochemical transformations of chiral emerging
organic pollutants. Anal Bioanal Chem 386(3):544–558
Wu H, Wang D, Song G, Ke Y, Liang X (2014) Novel chiral stationary phases based on peptoid
combining a quinine/quinidine moiety through a C9-position carbamate group. J Sep Sci 37
(8):934–943
Xie SM, Yuan LM (2017) Recent progress of chiral stationary phases for separation of enantiomers
in gas chromatography. J Sep Sci 40(1):124–137
Xu W, Wang X, Cai Z (2013) Analytical chemistry of the persistent organic pollutants identified in
the Stockholm Convention: A review. Anal Chim Acta 790:1–13
Xu M, Tang Z, Duan Y, Liu Y (2016) GC-based techniques for breath analysis: current status,
challenges, and prospects. Crit Rev Anal Chem 46(4):291–304
Xu S, Mo R, Jin C, Cui X, Bai R, Ji Y (2017) Mesoporous silica nanoparticles incorporated hybrid
monolithic stationary phase immobilized with pepsin for enantioseparation by capillary
electrochromatography. J Pharm Biomed Anal 140:190–198
Yang YZ, Liu XF, Zhang RB, Pang SP (2017) Joint experimental and theoretical studies of the
surprising stability of the aryl pentazole upon noncovalent binding to beta-cyclodextrin. Phys
Chem Chem Phys 19(46):31236–31244
Yao B, Yang X, Guo L, Kang S, Weng W (2014) Development of a composite chiral stationary
phase from BSA and beta-cyclodextrin-bonded silica. J Chromatogr Sci 52(10):1233–1238
Yehl PM, O’Brien TP, Moeder CW, Grinberg N, Bicker G, Wyvratt J (2000) Mechanisms of
retention of pyrrolidinyl norephedrine on immobilized alpha(1)-acid glycoprotein. Chirality 12
(3):107–113
Younes AA, Mangelings D, Vander Heyden Y (2011) Chiral separations in normal-phase liquid
chromatography: Enantioselectivity of recently commercialized polysaccharide-based selectors.
Part II. Optimization of enantioselectivity. J Pharm Biomed Anal 56(3):521–537
Yu L, Hong Y, Li L, Jin Y, Zheng M, Jiang H, Zeng S (2012) Enantioselective drug-protein
interaction between mexiletine and plasma protein. J Pharm Pharmacol 64(6):792–801
Yuan LM, Ma W, Xu M, Zhao HL, Li YY, Wang RL, Duan AH, Ai P, Chen XX (2017) Optical
resolution and mechanism using enantioselective cellulose, sodium alginate and hydroxypropylbeta-cyclodextrin membranes. Chirality 29(6):315–324
Zambonin CG (2003) Coupling solid-phase microextraction to liquid chromatography. A review.
Anal Bioanal Chem 375(1):73–80
Zhang ZB, Zhang WG, Luo WJ, Fan J (2008) Preparation and enantioseparation characteristics of a
novel chiral stationary phase based on mono (6(A)-azido-6(A)-deoxy)-per
(p-chlorophenylcarbamoylated) beta-cyclodextrin. J Chromatogr A 1213(2):162–168
Zhang C, Rodriguez E, Bi C, Zheng X, Suresh D, Suh K, Li Z, Elsebaei F, Hage DS (2018) High
performance affinity chromatography and related separation methods for the analysis of biological and pharmaceutical agents. Analyst 143(2):374–391
Zhao Y, Woo G, Thomas S, Semin D, Sandra P (2003) Rapid method development for chiral
separation in drug discovery using sample pooling and supercritical fluid chromatography-mass
spectrometry. J Chromatogr A 1003(1–2):157–166
Zhou J, Pei W, Zheng X, Zhao S, Zhang Z (2015) Preparation and enantioseparation characteristics
of a novel beta-cyclodextrin derivative chiral stationary phase in high-performance liquid
chromatography. J Chromatogr Sci 53(5):676–679
Zhou J, Yang B, Tang J, Tang W (2016) Cationic cyclodextrin clicked chiral stationary phase for
versatile enantioseparations in high-performance liquid chromatography. J Chromatogr A
1467:169–177
References
61
