首页> 外文期刊>Journal of chromatography, A: Including electrophoresis and other separation methods >Hexafluoroisopropanol-salt aqueous two-phase system for extraction and purification of chlorogenic acid from ramie leaves
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Hexafluoroisopropanol-salt aqueous two-phase system for extraction and purification of chlorogenic acid from ramie leaves

机译:六氟异丙醇 - 盐水性两相系统,用于从苎麻叶提取和纯化绿原酸

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Hexafluoroisopropanol (HFIP) was used as a phase-separation solvent to develop novel alcohol-salt aqueous two-phase systems (ATPSs) with various salts. Phase diagram and effective excluded volume (EEV) study proved that HFIP has much better phase-separation ability compared to traditional small molecule alcohols (ethanol, isopropanol and n-propanol). Then, the HFIP-NaCl ATPS was applied for the extraction and purification of chlorogenic acid (CGA) from ramie leaves. Under the optimum conditions (2 M NaCl solution with pH 3.0, the volume ratio of NaCl solution to HFIP at 6, vortex time 5 s and centrifugation time 7 min), the extraction efficiency of CGA in the salt-rich phase was 99.3%, meanwhile the HFIP-rich phase could extract a large amount of impurities. Furthermore, the CGA product with the purity of 91.0% was obtained from the salt-rich phase by semi-preparative liquid chromatography and salt removal, and its chemical structure was identified. Compared with other ATPSs, the HFIP-NaCl ATPS consumed much less organic solvent and salt, but acquired much higher extraction efficiency and obvious impurity-removal effect. Therefore, the HFIP-based alcohol-salt ATPSs are promising in the extraction and purification of CGA and other polar compounds as well. (C) 2019 Elsevier B.V. All rights reserved.
机译:六氟异丙醇(HFIP)用作相分离溶剂,以产生具有各种盐的新型醇 - 盐水性两相体系(ATPS)。相和有效排除的体积(EEV)研究证明,与传统的小分子醇(乙醇,异丙醇和正丙醇)相比,HFIP具有更好的相分离能力。然后,施用HFIP-NaCl ATP用于从苎麻叶中萃取和纯化绿原酸(CGA)。在最佳条件下(2M NaCl溶液3.0,NaCl溶液的体积比在6,涡旋时间5秒和离心时间7分钟),富含盐分的CGA的提取效率为99.3%,同时,丰富的HFIP相可以提取大量的杂质。此外,通过半制备液相色谱和盐除去,从富含盐的相获得91.0%的CGA产品,鉴定其化学结构。与其他ATPS相比,HFIP-NaCl ATP消耗了更少的有机溶剂和盐,但获得了更高的提取效率和明显的杂质除去效果。因此,基于硫化的醇盐ATPS在CGA和其它极性化合物的提取和纯化方面是有希望的。 (c)2019 Elsevier B.v.保留所有权利。

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