School of Chemistry and Chemical Engineering, North Minzu University, No. 204 Wenchang North Street, Xixia District, Yinchuan 750021, China; Ningxia Key Laboratory of Solar Chemical Conversion Technology, North Minzu University, Yinchuan, 750021,China; Key Laboratory for Chemical Engineering and Technology, State Ethnic Affairs Commission, North Minzu University, Yinchuan 750021, China.
School of Chemistry and Chemical Engineering, North Minzu University, No. 204 Wenchang North Street, Xixia District, Yinchuan 750021, China; Ningxia Key Laboratory of Solar Chemical Conversion Technology, North Minzu University, Yinchuan, 750021,China; Key Laboratory for Chemical Engineering and Technology, State Ethnic Affairs Commission, North Minzu University, Yinchuan 750021, China.
J Chromatogr A. 2021 Dec 6;1659:462627. doi: 10.1016/j.chroma.2021.462627. Epub 2021 Oct 16.
A strategy is proposed to develop a stationary phase for hydrophilic interaction liquid chromatography (HILIC) using the synergistic effect of polyhedral oligomeric silsesquioxane (POSS) and copolymer brushes. Octahedral octa-aminopropylsisesquioxane (8NH-POSS) was first bound to silica gel, followed by bromination to form a cubic initiator. Then, using acrylamide (AM) and dihydroxypropyl methacrylate (DPMA) as mixed monomers, surface initiated-atom transfer radical polymerization was conducted to prepare a stationary phase comprising cubic copolymer brushes with amide and diol groups. The characterization of the stationary phase confirmed the successful synthesis of Sil-NH-POSS/Poly(AM-co-DPMA). The chromatographic properties were investigated using nucleosides, organic acids and β-agonists to find that our designed column has superior hydrophilic property, better separation performance compared with classical HILIC columns consisting of diol- or amino-modified silica. The systematic investigation of the retention mechanism and separation selectivity using various types of polar compounds revealed that Sil-NH-POSS/Poly(AM-co-DPMA) follows a mixed-mode retention composed of HILIC and electrostatic interactions. Besides, it exhibits good column efficiency and stability. The role of 8NH-POSS in the separation was evaluated by comparing the performance of Sil-NH-POSS/Poly(AM-co-DPMA) and poly(AM-co-DPMA)-modified silica without 8NH-POSS. In conclusion, our designed based on POSS and hydrophilic copolymer brushes can contribute to the development of HILIC separation materials with enhanced performance.
提出了一种使用笼型倍半硅氧烷(POSS)和共聚物刷的协同效应开发亲水相互作用液相色谱(HILIC)固定相的策略。首先将八面体八氨丙基倍半硅氧烷(8NH-POSS)键合到硅胶上,然后进行溴化反应形成立方引发剂。然后,使用丙烯酰胺(AM)和二羟丙基甲基丙烯酸酯(DPMA)作为混合单体,通过表面引发原子转移自由基聚合制备包含酰胺和二醇基团的立方共聚物刷的固定相。固定相的表征证实了 Sil-NH-POSS/Poly(AM-co-DPMA)的成功合成。使用核苷、有机酸和β-激动剂研究了固定相的色谱性能,发现我们设计的柱子具有优异的亲水性,与由二醇或氨基改性硅胶组成的经典 HILIC 柱相比具有更好的分离性能。使用各种类型的极性化合物系统地研究保留机制和分离选择性表明,Sil-NH-POSS/Poly(AM-co-DPMA)遵循由 HILIC 和静电相互作用组成的混合模式保留。此外,它还表现出良好的柱效和稳定性。通过比较具有和不具有 8NH-POSS 的 Sil-NH-POSS/Poly(AM-co-DPMA)和聚(AM-co-DPMA)改性硅胶的性能来评估 8NH-POSS 在分离中的作用。总之,我们基于 POSS 和亲水共聚物刷的设计可以为开发具有增强性能的 HILIC 分离材料做出贡献。