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基于静电自组装制备反相/阴离子交换/阳离子交换三模态固定相的色谱评价。

Chromatographic evaluation of reversed-phase/anion-exchange/cation-exchange trimodal stationary phases prepared by electrostatically driven self-assembly process.

机构信息

Dionex Corporation, 1228 Titan Way, Sunnyvale, CA 94088, USA.

出版信息

J Chromatogr A. 2011 Jun 3;1218(22):3407-12. doi: 10.1016/j.chroma.2011.03.035. Epub 2011 Mar 24.

Abstract

This work describes chromatographic properties of reversed-phase/cation-exchange/anion-exchange trimodal stationary phases. These stationary phases were based on high-purity porous spherical silica particles coated with nano-polymer beads using an electrostatically driven self-assembly process. The inner-pore area of the material was modified covalently with an organic layer that provided both reversed-phase and anion-exchange properties while the outer surface was coated with nano-sized polymer beads with strong cation-exchange characteristics. This design ensured spatial separation of the anion-exchange and the cation-exchange regions, and allowed reversed-phase, anion-exchange and cation-exchange retention mechanisms to function simultaneously. Chromatographic evaluation of ions and small molecules suggested that retention of ionic analytes was influenced by the ionic strength, pH, and mobile phase organic solvent content, and governed by both ion-exchange and hydrophobic interactions. Meanwhile, neutral analytes were retained by hydrophobic interaction and was mainly affected by mobile phase organic solvent content. Depending on the specific application, selectivity could be optimized by adjusting the anion-exchange/cation-exchange capacity ratio (selectivity), which was achieved experimentally by using porous silica particles with different surface areas.

摘要

本工作描述了反相/阳离子交换/阴离子交换三模态固定相的色谱性能。这些固定相是基于高纯度多孔球形硅胶颗粒,采用静电驱动自组装工艺涂覆纳米聚合物珠。材料的内孔区域通过共价键修饰有机层,提供反相和阴离子交换特性,而外表面涂覆具有强阳离子交换特性的纳米聚合物珠。这种设计确保了阴离子交换和阳离子交换区域的空间分离,并允许反相、阴离子交换和阳离子交换保留机制同时起作用。对离子和小分子的色谱评估表明,离子分析物的保留受离子强度、pH 值和流动相有机溶剂含量的影响,并受离子交换和疏水相互作用的共同控制。同时,中性分析物通过疏水相互作用保留,主要受流动相有机溶剂含量的影响。根据具体应用,可以通过调整阴离子交换/阳离子交换容量比(选择性)来优化选择性,这可以通过使用具有不同表面积的多孔硅胶颗粒来实验实现。

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