School of Chemistry and Chemical Engineering, Key Laboratory of Chemistry and Engineering of Forest Products, State Ethnic Affairs Commission, Guangxi Key Laboratory of Chemistry and Engineering of Forest Products, Guangxi Collaborative Innovation Center for Chemistry and Engineering of Forest Products, Guangxi Minzu University, Nanning 530006, China.
School of Chemistry and Chemical Engineering, Key Laboratory of Chemistry and Engineering of Forest Products, State Ethnic Affairs Commission, Guangxi Key Laboratory of Chemistry and Engineering of Forest Products, Guangxi Collaborative Innovation Center for Chemistry and Engineering of Forest Products, Guangxi Minzu University, Nanning 530006, China.
Talanta. 2023 Sep 1;262:124691. doi: 10.1016/j.talanta.2023.124691. Epub 2023 May 19.
Chromatographic stationary phases with molecular-shape selectivity are advantageous for the separation and analysis of geometric isomers. Herein, dehydroabietic acid is bonded on the surface of silica microspheres via 3-glycidoxypropyltrimethoxysilane to form a monolayer dehydroabietic-acid stationary phase (Si-DOMM) with a racket-shaped structure. Various characterization techniques indicate that Si-DOMM is successfully prepared, and the separation performance of a Si-DOMM column is evaluated. The stationary phase has a low silanol activity and metal contamination and a high hydrophobicity and shape selectivity. The resolutions of lycopene, lutein, and capsaicin on the Si-DOMM column confirm that the stationary phase exhibits high shape selectivity. The elution order of n-alkyl benzene on the Si-DOMM column indicates its high hydrophobic selectivity and suggests that the separation is an enthalpy-driven process. Repeatability experiments reveal highly stable preparation processes of the stationary phase and column and indicate that the relative standard deviations of retention time, peak height, and peak area are less than 0.26%, 3.54%, and 3.48%, respectively. Density functional theory calculations using n-alkylbenzenes, polycyclic aromatic hydrocarbons, amines, and phenols as model solutes provide an intuitive and quantitative description of the multiple retention mechanisms. The Si-DOMM stationary phase exhibits superior retention and high selectivity for these compounds via multiple interactions. The bonding phase of the monolayer dehydroabietic acid stationary phase with a racket-shaped structure has a unique affinity for benzene, strong shape selectivity, and good separation performance for geometrical isomers with different molecular shapes.
具有分子形状选择性的色谱固定相有利于几何异构体的分离和分析。在此,通过 3-缩水甘油丙基三甲氧基硅烷将脱氢枞酸键合到硅胶微球表面上,形成具有球拍形结构的单层脱氢枞酸固定相(Si-DOMM)。各种表征技术表明成功制备了 Si-DOMM,并评估了 Si-DOMM 柱的分离性能。固定相具有低硅醇活性和金属污染、高疏水性和形状选择性。在 Si-DOMM 柱上对番茄红素、叶黄素和辣椒素的分离证实了固定相具有高形状选择性。在 Si-DOMM 柱上 n-烷基苯的洗脱顺序表明其具有高疏水性选择性,表明分离是一个焓驱动过程。重复性实验表明固定相和柱的制备过程非常稳定,保留时间、峰高和峰面积的相对标准偏差分别小于 0.26%、3.54%和 3.48%。使用 n-烷基苯、多环芳烃、胺和酚作为模型溶质的密度泛函理论计算提供了对多种保留机制的直观和定量描述。单层脱氢枞酸固定相的键合相具有独特的苯亲和力、强形状选择性,对不同分子形状的几何异构体具有良好的分离性能。