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Determination of Optical Purity of Lactic Acid-Based Chiral Liquid Crystals and Corresponding Building Blocks by Chiral High-Performance Liquid Chromatography and Supercritical Fluid Chromatography

机译:手性高效液相色谱和超临界流体色谱法测定乳酸基手性液晶及其相应结构单元的光学纯度

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摘要

Liquid crystals (LCs) are among the most prominent materials of the current information age, mainly due to their well-known application in liquid crystal displays (LCDs). Their unique electro-optical properties stem from their ability to form organised structures (mesophases) on the transition from solid state to isotropic liquid. Molecules of LCs in a mesophase still maintain the anisotropy of solid crystals, while simultaneously exhibiting the fluidity of liquids, which gives the system the ability to react immediately to external stimuli such as electric or magnetic fields, light, mechanical stress, pressure and, of course, temperature. For the proper function of LC-based devices, not only chemical, but also optical purity of materials is strongly desirable, since any impurity could be detrimental to the self-assembly of the molecules. Therefore, in this study we aimed to verify synthetic methods published in the literature, which are used nowadays to prepare chiral building blocks based on lactic acid, for their enantioselectivity. Moreover, we have focused on the development of an analytical chiral separation method for target liquid crystalline materials. Using a chiral polysaccharide-based column operated in liquid chromatography mode, we show that not all published methods of LC synthesis are enantioselective, which could lead to significant differences in the properties of the resulting materials. We show that high-performance liquid chromatography with UV detection and supercritical fluid chromatography with UV and mass spectrometry detection enable full control over the chemical and optical purity of the target LCs and the corresponding chiral building blocks. For the first time, we utilise supercritical fluid chromatography with mass detection for the direct chiral analysis of liquid crystalline materials and impurities formed during the synthesis.
机译:液晶(LC)是当前信息时代最主要的材料之一,主要是由于它们在液晶显示器(LCD)中的众所周知的应用。它们独特的电光特性源于它们在从固态向各向同性液体过渡时形成有组织的结构(中间相)的能力。中间相中的LC分子仍保持固态晶体的各向异性,同时展现出液体的流动性,这使系统能够立即对外部刺激(例如电场或磁场,光,机械应力,压力和当然,温度。对于基于LC的设备的正常功能,不仅化学的而且光学的纯度也非常重要,因为任何杂质都可能有害于分子的自组装。因此,在这项研究中,我们旨在验证文献中公开的合成方法,因为它们的对映选择性,如今已用于制备基于乳酸的手性结构单元。此外,我们集中于目标液晶材料的分析手性分离方法的开发。使用在液相色谱模式下操作的基于手性多糖的色谱柱,我们表明并非所有公开的液相色谱合成方法都是对映选择性的,这可能导致所得材料的性质发生重大差异。我们显示,具有UV检测的高效液相色谱和具有UV和质谱检测的超临界流体色谱能够完全控制目标LC和相应手性构件的化学和光学纯度。我们首次使用具有质量检测功能的超临界流体色谱对合成过程中形成的液晶材料和杂质进行直接手性分析。

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