Preparation of Poly-(GMA-EDA-β-CD-co-TMPTMA) Monolith as High Performance Liquid Chromatography Chiral Stationary Phase Column
Stevin Carolius Angga(1*), Dias Septiana(2), Suci Amalia(3), Warsito Warsito(4), Elvina Dhiaul Iftitah(5), Akhmad Sabarudin(6)
(1) Department of Chemistry, Brawijaya University, Jl. Veteran, Malang 65145, Indonesia
(2) Department of Chemistry, Brawijaya University, Jl. Veteran, Malang 65145, Indonesia
(3) Department of Chemistry, Brawijaya University, Jl. Veteran, Malang 65145, Indonesia
(4) Department of Chemistry, Brawijaya University, Jl. Veteran, Malang 65145, Indonesia
(5) Department of Chemistry, Brawijaya University, Jl. Veteran, Malang 65145, Indonesia
(6) Department of Chemistry, Brawijaya University, Jl. Veteran, Malang 65145, Indonesia
(*) Corresponding Author
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[1] Aydoğan, C., 2018, Chiral separation and determination of amino acid enantiomers in fruit juice by open tubular nano liquid chromatography, Chirality, 30 (10), 1144–1149.
[2] Szejtli, J., 2004, Past, present, and future of cyclodextrin research, Pure Appl. Chem., 76 (10), 1825–1845.
[3] Zhang, P., Wang, J., Yang, H., Su, L., Xiong, Y., and Ye, F., 2016, Facile one-pot preparation of chiral monoliths with a well-defined framework based on the thiol–ene click reaction for capillary liquid chromatography, RSC Adv., 6 (30), 24835–24842.
[4] Guerrouache, M., Millot, M.C., and Carbonnier, B., 2009, Functionalization of macroporous organic polymer monolith based on succinimide ester reactivity for chiral capillary chromatography: A cyclodextrin click approach, Macromol. Rapid Commun., 30 (2), 109–113.
[5] Nema, T., Chan, E.C.Y., and Ho, P.C., 2014, Applications of monolithic materials for sample preparation, J. Pharm. Biomed. Anal., 87, 130–141.
[6] Vaast, A., Terryn, H., Svec, F., and Eeltink, S., 2014, Nanostructured porous polymer monolithic columns for capillary liquid chromatography of peptides, J. Chromatogr. A, 1374, 171–179.
[7] Tanaka, N., Kobayashi, H., Ishizuka, N., Minakuchi, H., Nakanishi, K., Hosoya, K., and Ikegami, T., 2002, Monolithic silica columns for high-efficiency chromatographic separations, J. Chromatogr. A, 965 (1-2), 35–49.
[8] Hilder, E.F., Svec, F., and Fréchet, J.M., 2004, Development and application of polymeric monolithic stationary phases for capillary electro chromatography, J. Chromatogr. A, 1044 (1-2), 3–22.
[9] Tasfiyati, A.N., Iftitah, E.D., Sakti, S.P., and Sabarudin, A., 2016, Evaluation of glycidyl methacrylate-based monolith functionalized with weak anion exchange moiety inside 0.5 mm i.d. column for liquid chromatographic separation of DNA, Anal. Chem. Res., 7, 9–16.
[10] Gusev, I., Huang, X., and Horváth, C., 1999, Capillary columns with in situ formed porous monolithic packing for micro high-performance liquid chromatography and capillary electro chromatography, J. Chromatogr. A, 855 (1), 273–290.
[11] Zou, H., Huang, X., Ye, M., and Luo, Q., 2002, Monolithic stationary phases for liquid chromatography and capillary electrochromatography, J. Chromatogr. A, 954 (1-2), 5–32.
[12] Moravcová, D., Jandera, P., Urban, J., and Planeta, J., 2003, Characterization of polymer monolithic stationary phases for capillary HPLC, J. Sep. Sci., 26 (11), 1005–1016.
[13] Shu, X., Chen, L., Yang, B., and Guan, Y., 2004, Preparation and characterization of long methacrylate monolithic column for capillary liquid chromatography, J. Chromatogr. A, 1052 (1-2), 205–209.
[14] Vidič, J., Podgornik, A., Jančar, J., Frankovič, V., Košir, B., Lendero, N., Čuček, K., Krajnc, M., and Štramcar, A., 2007, Chemical and chromatographic stability of methacrylate-based monolithic columns, J. Chromatogr. A, 1144 (1), 63–71.
[15] Sabarudin, A., Huang, J., Shu, S., and Umemura, T., 2012, Preparation of methacrylate-based anion-exchange monolithic microbore column for chromatographic separation of DNA fragments and oligonucleotides, Anal. Chim. Acta, 736, 108–114.
[16] Ueki, Y., Umemura, T., Li, J., Odake, T., and Tsunoda, K., 2004, Preparation and Application of Methacrylate-based cation-exchange monolithic columns for capillary ion chromatography, Anal. Chem., 76 (23), 7007–7012.
[17] Gu, C., and Shamsi, S.A., 2011, Evaluation of methacrylate-bonded cyclodextrins as a monolithic chiral stationary phase for capillary electrochromatography (CEC)-UV and CEC coupled to mass spectrometry, Electrophoresis, 32 (19), 2727–2737.
[18] Shu, S., Kobayashi, H., Kojima, N., Sabarudin, A., and Umemura, T., 2011, Preparation and characterization of lauryl methacrylate-based monolithic microbore column for reversed-phase liquid chromatography, J. Chromatogr. A, 1218 (31), 5228–5234.
[19] Tang, W., and Ng, S.C., 2008, Facile synthesis of mono-6-amino-6-deoxy-α-, β-, γ-cyclodextrin hydrochlorides for molecular recognition, chiral separation and drug delivery, Nat. Protoc., 3 (4), 691–697.
[20] Liu, Y.Y., Fan, X.D., and Gao, L., 2003, Synthesis and characterization of β-cyclodextrin based functional monomers and its copolymers with N-isopropylacrylamide, Macromol. Biosci., 3 (12), 715–719.
[21] Li, Y., Song, C., Zhang, L., Zhang, W., and Fu, H., 2010, Fabrication and evaluation of chiral monolithic column modified by β-cyclodextrin derivatives, Talanta, 80 (3), 1378–1384.
DOI: https://doi.org/10.22146/ijc.38556
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