Zhang Mingliang, Chen Jia, Mallik Abul K, Qiu Hongdeng, Jiang Shengxiang, Ihara Hirotaka
Key Laboratory of Chemistry of Northwestern Plant Resources and Key Laboratory for Natural Medicine of Gansu Province, Lanzhou Institute of Chemical Physics, Chinese Academy of Sciences, Lanzhou 730000, China; University of Chinese Academy of Sciences, Chinese Academy of Sciences, Beijing 100049, China.
Key Laboratory of Chemistry of Northwestern Plant Resources and Key Laboratory for Natural Medicine of Gansu Province, Lanzhou Institute of Chemical Physics, Chinese Academy of Sciences, Lanzhou 730000, China.
Anal Chim Acta. 2014 Jun 23;833:48-55. doi: 10.1016/j.aca.2014.05.011. Epub 2014 May 13.
A novel branch-type diamide-embedded octadecyl stationary phase was prepared by facile amidation. The preparation of this new phase involves the synthesis of new bifunctional silane ligand and surface modification of spherical silica via anchoring of silane coupling agent. The obtained diamide-embedded octadecyl stationary phase demonstrated excellent hydrophobic selectivity, as well as enhanced shape and planarity selectivity in comparison to commercial polymeric and monomeric C18 phases, respectively, as revealed by the systematic investigation into its liquid chromatographic retention of isomeric polycyclic aromatic hydrocarbons. The applicability of this new stationary phase was further testified by the effective separation of isomeric compounds belong to different chemical classes, including chain isomers of alkylbenzenes, and positional isomers of substituted aromatics. An in-depth analysis of the separation mechanisms other than molecular shape recognition involved in the new stationary phase was performed using a linear solvation energy relationships model and compared with its monoamide and pure C18 counterparts correspondingly. The performance of the new stationary phase in quantitative analysis of phenols from real-world samples was also evaluated.
通过简便的酰胺化反应制备了一种新型的支链型二酰胺嵌入十八烷基固定相。该新固定相的制备涉及新型双功能硅烷配体的合成以及通过硅烷偶联剂的锚定对球形硅胶进行表面改性。通过对其对多环芳烃异构体的液相色谱保留情况进行系统研究发现,所制备的二酰胺嵌入十八烷基固定相表现出优异的疏水选择性,并且分别与市售的聚合物型和单体型C18固定相相比,具有增强的形状和平面选择性。通过有效分离属于不同化学类别的异构体化合物,包括烷基苯的链异构体和取代芳烃的位置异构体,进一步证明了这种新型固定相的适用性。使用线性溶剂化能关系模型对新固定相中除分子形状识别之外的分离机制进行了深入分析,并相应地与其单酰胺和纯C18固定相进行了比较。还评估了新固定相在实际样品中酚类定量分析中的性能。