Liquid crystals purity assay using nonaqueous capillary electrokinetic chromatography

. 2022 Aug ; 43 (15) : 1638-1646. [epub] 20220601

Jazyk angličtina Země Německo Médium print-electronic

Typ dokumentu časopisecké články, práce podpořená grantem

Perzistentní odkaz   https://www.medvik.cz/link/pmid35616901

A method for purity control of newly synthesized lactic acid-based liquid crystals has been developed. The electrokinetic chromatography proved to be suitable for the separation of these electroneutral substances from their impurities. The separations were performed in an acidic acetonitrile-based background electrolyte (BGE) with a pseudostationary phase formed by a cationic surfactant. During the optimization step, appropriate concentrations of cetyltrimethylammonium bromide, acetic acid, and water were seeked. In the optimized method, separations were carried out in acetonitrile with 1-mol/L acetic acid, 80-mmol/L cetyltrimethylammonium bromide, and 6% (v/v) water. Interesting positive effects of a small water content in the BGE on electroosmotic flow and resolution of liquid crystal substances from their impurities were observed and discussed. Samples of five liquid crystal substances, both pure and containing impurities from synthesis, were analyzed. The identification of analytes was based on a comparison of relative migration times related to the migration time of mesityl oxide. For all five samples, impurities were separated from the liquid crystals and the method thus showed its viability. To the best of our knowledge, this method is used for the first time for the purity control of newly synthesized liquid crystals. This method can be used to confirm or complement the results obtained by commonly used high-performance liquid chromatography and supercritical fluid chromatography methods. Furthermore, the electrokinetic chromatography method requires very small amounts of sample, solvents, and buffer constituents. Overall, its operational costs are significantly lower.

Zobrazit více v PubMed

Gennes PG, Prost J. The physics of liquid crystals. 2nd ed. New York: Oxford University Press; 1993.

Stephen MJ, Straley JP. Physics of liquid crystals. Rev Mod Phys. 1974;46:617-4.

Tomi S, Dressel M. Ferroelectricity in molecular solids: a review of electrodynamic properties. Rep Prog Phys. 2015;78:096501.

Hird M, Goodby JW, Toyne KJ. Molecular the development of materials, mixtures and gels for ferroelectric displays. Cryst Liq Cryst. 2006;360:1-15.

Brombach F, Neudörfl JM, Blunk D. The chiral pool as valuable natural source: new chiral mesogens made from lactic. Acid Mol Cryst Liq Cryst. 2011;542:62-74.

Brombach F, Neudörfl JM, Blunk D. Effect of core structures and swallow-tailed groups on the mesomorphic properties of chiral liquid crystals derived from (L)-lactic acid. Liq Cryst. 2004;31:1613-7.

Vojtylová T, Kašpar M, Hamplová V, Novotná V, Sýkora D. Chiral HPLC for a study of the optical purity of new liquid crystalline materials derived from lactic acid. Phase Trans. 2014;87:758-69.

Vaňkátová P, Šrolerová T, Kubíčková A, Kalíková K. Fast UHPLC enantioseparation of liquid crystalline materials with chiral center based on octanol in reversed-phase and polar organic mode. Monatsh Chem. 2020;151:1235-40.

Vaňkátová P, Kubíčková A, Cigl M, Kalíková K. Ultra-performance chromatographic methods for enantioseparation of liquid crystals based on lactic acid. J Supercrit Fluids. 2019;146:217-25.

Vaňkátová P, Kalíková K, Kubíčková A. Ultra-performance supercritical fluid chromatography: a powerful tool for the enantioseparation of thermotropic fluorinated liquid crystals. Anal Chim Acta. 2018;1038:191-7.

Terabe S, Otsuka K, Ichikawa K, Tsuchiya A, Ando T. Electrokinetic separations with micellar solutions and open-tubular capillaries. Anal Chem. 1984;56:111-3.

Melanson JE, Baryla NE, Lucy CA. Dynamic capillary coatings for electroosmotic flow control in capillary electrophoresis. TrAC Trends Anal Chem. 2001;20:365-74.

Guo XF, Guo XM, Wang H, Zhang HS. One step physically adsorbed coating of silica capillary with excellent stability for the separation of basic proteins by capillary zone electrophoresis. Talanta. 2015;144:110-4.

Znaleziona J, Petr J, Knob R, Maier V, Sevcik J. Dynamic coating agents in CE. Chromatographia. 2008;67:5-12.

Tůma P, Koval D, Sommerová B, Vaculín Š. Separation of anaesthetic ketamine and its derivates in PAMAPTAC coated capillaries with tuneable counter-current electroosmotic flow. Talanta. 2020;217:121094.

Kenndler E. A critical overview of non-aqueous capillary electrophoresis. Part I: Mobility and separation selectivity. J Chromatogr A. 2014;1335:16-30.

Riekkola ML. Recent advances in nonaqueous capillary electrophoresis. Electrophoresis. 2002;23:3865-83.

Jalali F, Gerandaneh A. Micellization of cetyltrimethylammonium bromide (CTAB) in mixed solvents and in the presence of potassium bromide. J Dispersion Sci Technol. 2011;32:659-66.

Bakshi NS. Micelle formation by anionic and cationic surfactants in binary aqueous solvents. J Chem Soc Faraday Trans. 1993;24:4323-6.

Jalali F, Shamsipur M, Alizadeh N. Conductance study of the thermodynamics of micellization of 1-hexadecylpyridinium bromide in (water plus cosolvent). J Chem Thermodyn. 2000;32:755-65.

Lin JM, Nakagawa M, Uchiyama K, Hobo T. Determination of critical micelle concentration of SDS in formamide by capillary electrophoresis. Chromatographia. 1999;50:739-44.

Guo X, Wang K, Chen GH, Shi J, Wu X, Di LL, et al. Determination of strobilurin fungicide residues in fruits and vegetables by nonaqueous micellar electrokinetic capillary chromatography with indirect laser-induced fluorescence. Electrophoresis. 2017;38:2004-10.

Podoliak N, Novotná V, Kašpar M, Hamplová V, Pacherová O. Chiral smectogens with four-phenyl-ring molecular core, laterally substituted by iodine atom. Liq Cryst. 2015;42:404-11.

Williams BA, Vigh G. Fast, accurate mobility determination method for capillary electrophoresis. Anal Chem. 1996;68:1174-80.

Seifar RM, Kraak JC, Kok WT. Mechanism of electrokinetic separations of hydrophobic compounds with sodium dodecyl sulfate in acetonitrile-water mixtures. Anal Chem. 1997;69:2772-8.

Hellqvist A, Hedeland Y, Pettersson C. Evaluation of electroosmotic markers in aqueous and nonaqueous capillary electrophoresis. Electrophoresis. 2013;34:3252-9.

Burton DE, Powell LL, Xi XB. Reproducibility of the determination of caffeine in coffee by micellar electrokinetic capillary chromatography. J Microcolumn Sep. 1994;6:5-10.

Kumar G, Chauhan MS. Conductometric investigations of surfactant behavior in aqueous polar aprotic organic additives. J Mol Liq. 2018;249:710-5.

Najít záznam

Citační ukazatele

Pouze přihlášení uživatelé

Možnosti archivace

Nahrávání dat ...