College of Life Science, Hebei University, Baoding 071002, PR China; Key Laboratory of Forest Plant Ecology, Ministry of Education, Northeast Forestry University, Harbin 150040, PR China.
Key Laboratory of Forest Plant Ecology, Ministry of Education, Northeast Forestry University, Harbin 150040, PR China.
J Chromatogr A. 2020 Feb 22;1613:460671. doi: 10.1016/j.chroma.2019.460671. Epub 2019 Nov 4.
In this work, synthesized magnetic silicone loaded with ionic liquid (FeO@SiO@IL) particles combined with gas-liquid-solid magnetically stabilized bed (GLS-MSB) were applied to enrich flavonoids from tree peony petal extraction solution. The magnetic core (FeO) encased in silica was conducive to its rapid and efficient separation, and the modification of silica with ionic liquids (ILs) could provide the functional groups for selective adsorption of flavonoids. Furthermore, the magnetic materials were evenly dispersed in the GLS-MSB system, realizing the adequate contact and causing the positive influence on the result. After physicochemical characterization, the prepared FeO@SiO@IL (IL=VBimBr) particles were validated in the enrichment performance of flavonoids, including the type of ionic liquid loaded, desorption solution, adsorption and desorption kinetics. The adsorption kinetics obeyed the pseudo-second-order model, the adsorption isotherms were consistent with the Langmuir equation, and the adsorption process was spontaneous and exothermic. Additionally, the dynamic processes using GLS-MSB packed with FeO@SiO@IL particles were evaluated systematically, deriving the optimum conditions (5 mL/min liquid flow rate, 130 mL Loading amount and 42.55 Oe magnetic field intensity) and improving the purity of flavonoids. After enrichment, the FeO@SiO@IL particles were successfully recycled and reused. Overall, the developed method offers a great potential for the enrichment of flavonoids from natural materials.
在这项工作中,合成的磁性硅胶负载离子液体(FeO@SiO@IL)颗粒与气-液-固磁稳定床(GLS-MSB)相结合,用于从牡丹花瓣提取液中富集类黄酮。磁性核(FeO)被包裹在二氧化硅中,有利于其快速高效分离,而离子液体(ILs)对二氧化硅的修饰可以提供选择性吸附类黄酮的功能基团。此外,磁性材料均匀分散在 GLS-MSB 体系中,实现了充分接触,并对结果产生了积极影响。经过物理化学特性表征,制备的 FeO@SiO@IL(IL=VBimBr)颗粒在类黄酮的富集性能方面得到了验证,包括负载的离子液体类型、解吸溶液、吸附和解吸动力学。吸附动力学符合准二级模型,吸附等温线与朗缪尔方程一致,吸附过程是自发和放热的。此外,还系统地评估了使用 GLS-MSB 填充 FeO@SiO@IL 颗粒的动态过程,得出了最佳条件(5mL/min 液体流速、130mL 装载量和 42.55Oe 磁场强度),提高了类黄酮的纯度。富集后,FeO@SiO@IL 颗粒成功回收并重复使用。总的来说,所开发的方法为从天然材料中富集类黄酮提供了很大的潜力。