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Liquid Crystals as Stationary Phases in Chromatography

Journal

CHROMATOGRAPHIA
Volume 79, Issue 19-20, Pages 1217-1245

Publisher

SPRINGER HEIDELBERG
DOI: 10.1007/s10337-016-3154-5

Keywords

Liquid crystals; Liquid crystalline stationary phases; Acceptor-donor properties of liquid crystalline stationary phases; Inverse gas chromatography

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The most correct analysis of the compositions of diverse analytes mixtures is significant for analytical studies in different fields; however, many prevalent analytes cannot be identified employing traditional partition gas chromatographic methods. Thus, the increasing requirements on analytes of isomeric compounds and the problems encountered in their separation demand a study of more diverse analytical systems which are characterised by higher selectivity. Therefore, the selectivity and polarities of various liquid crystals (rod-like, banana-shape, biforked, oxygen, sulphur, nitrogen, and metal containing molecules, Schiff-base, and polymeric dendrimers) employed as liquid crystalline stationary phases (LCSPs) have been discussed from both points of views, namely, their analytical applications and thermodynamic characteristics of infinitely diluted probes with different acceptor-donor properties. Extreme particular effort has been paid to the different interdependencies between the bound up chemical structures of liquid crystal molecules with their different acceptor-donor properties and the connected resolution capabilities in the interpretation of the probe-LCSP systems, on the basis of the lnV(g(T)) = f (1/T) and ln (a(1)/w(1))(infinity) = f (1/T) dependencies, with regard to the LCSP compositions, which have been controlled by the counterbalancing of the enthalpy and entropy factors. The properties of binary systems composed of liquid crystalline poly(propyleneimine) dendrimers-rod-like molecules of liquid crystals and effects of the dendrimer structure, the chemical nature, and molecular size of the non-mesogens on the ability to dissolve in the liquid crystalline phases, have been interpreted. Practical applications of metallomesogenes and chiral stationary phases for analytical separation of different organic substances have also been taken into consideration.

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