Liu Chusheng, Li Haibin, Wang Qiqin, Crommen Jacques, Zhou Haibo, Jiang Zhengjin
Institute of Pharmaceutical Analysis, College of Pharmacy, Jinan University, Guangzhou 510632, China.
Institute of Pharmaceutical Analysis, College of Pharmacy, Jinan University, Guangzhou 510632, China; Department of Pharmaceutical Sciences, University of Liege, CHU B36, B-4000 Liege, Belgium.
J Chromatogr A. 2017 Aug 4;1509:83-90. doi: 10.1016/j.chroma.2017.06.034. Epub 2017 Jun 14.
The quest for higher column efficiency is one of the major research areas in polymer-based monolithic column fabrication. In this research, two novel polymer-based HILIC monolithic columns with 400μm I.D.×800μm O.D. were prepared based on the thermally initiated co-polymerization of N,N-dimethyl-N-(3-methacrylamidopropyl)-N-(3-sulfopropyl) ammonium betaine (SPP) and ethylene glycol dimethacrylate (EDMA) or N,N'-methylenebisacrylamide (MBA). In order to obtain a satisfactory performance in terms of column permeability, mechanical stability, efficiency and selectivity, the polymerization parameters were systematically optimized. Column efficiencies as high as 142, 000 plates/m and 120, 000 plates/m were observed for the analysis of neutral compounds at 0.6mm/s on the poly(SPP-co-MBA) and poly(SPP-co-EDMA) monoliths, respectively. Furthermore, the Van Deemter plots for thiourea on the two monoliths were compared with that on a commercial silica based ZIC-HILIC column (3.5μm, 200Å, 150mm×300μm I.D.) using ACN/HO (90/10, v/v) as the mobile phase at room temperature. It was noticeable that the Van Deemter curves for both monoliths, particularly the poly(SPP-co-MBA) monolith, are significantly flatter than that obtained for the ZIC-HILIC column, which indicates that in spite of their larger internal diameters, they yield better overall efficiency, with less peak dispersion, across a much wider range of usable linear velocities. A clearly better separation performance was also observed for nucleobases, nucleosides, nucleotides and small peptides on the poly(SPP-co-MBA) monolith compared to the ZIC-HILIC column. It is particularly worth mentioning that these 400μm I.D. polymer-based HILIC monolithic columns exhibit enhanced mechanical strength owing to the thicker capillary wall of the fused-silica capillaries.
追求更高的柱效是基于聚合物的整体柱制备中的主要研究领域之一。在本研究中,基于N,N-二甲基-N-(3-甲基丙烯酰胺基丙基)-N-(3-磺丙基)甜菜碱(SPP)与乙二醇二甲基丙烯酸酯(EDMA)或N,N'-亚甲基双丙烯酰胺(MBA)的热引发共聚反应,制备了两根内径为400μm、外径为800μm的新型聚合物基亲水作用色谱整体柱。为了在柱渗透性、机械稳定性、柱效和选择性方面获得令人满意的性能,对聚合参数进行了系统优化。在聚(SPP-co-MBA)和聚(SPP-co-EDMA)整体柱上,以0.6mm/s的流速分析中性化合物时,柱效分别高达142000塔板/米和120000塔板/米。此外,在室温下,以乙腈/水(90/10,v/v)为流动相,将两根整体柱上硫脲的范德姆特曲线与商用硅胶基ZIC-HILIC柱(3.5μm,200Å,150mm×300μm内径)上的曲线进行了比较。值得注意的是,两根整体柱的范德姆特曲线,特别是聚(SPP-co-MBA)整体柱的曲线,比ZIC-HILIC柱的曲线明显更平缓,这表明尽管它们的内径较大,但在更宽的可用线性流速范围内,它们具有更好的整体柱效,峰展宽更小。与ZIC-HILIC柱相比,在聚(SPP-co-MBA)整体柱上对核碱基、核苷、核苷酸和小肽也观察到了明显更好的分离性能。特别值得一提的是,这些内径为400μm的聚合物基亲水作用色谱整体柱由于熔融石英毛细管的毛细管壁较厚而具有增强的机械强度。