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首页> 外文期刊>Journal of chromatography, A: Including electrophoresis and other separation methods >Effect of content of chiral selector and pore size of core-shell type silica support on the performance of amylose tris(3,5-dimethylphenylcarbamate)-based chiral stationary phases in nano-liquid chromatography and capillary electrochromatography
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Effect of content of chiral selector and pore size of core-shell type silica support on the performance of amylose tris(3,5-dimethylphenylcarbamate)-based chiral stationary phases in nano-liquid chromatography and capillary electrochromatography

机译:纳米液相色谱和毛细管电色谱中手性选择剂的含量和核壳型二氧化硅载体孔径对直链淀粉三(3,5-二甲基苯基氨基甲酸酯)基手性固定相性能的影响

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摘要

In this study the separation performance of various chiral stationary phases (CSPs) made of polysaccharide-based chiral selectors coated onto superficially porous (core-shell or fused-core) silica supports were evaluated. The CSPs obtained by coating of various amounts of chiral selector (1-5%) onto supports of various pore size (100 and 300 ?) were studied. Their evaluation was pursued in both chiral nano-liquid chromatography (nano-LC) and chiral capillary electrochromatography (CEC). Among the goals of this study was to re-examine our previous unexpected finding of better performance of superficially porous CSP under CEC conditions compared to nano-LC conditions for a new set of chiral compounds, as well as to study the effect of varying the chiral selector content and nominal pore size of supporting silica on the performance of core-shell silica-based polysaccharide-type CSPs. Based on the results of this study it can be seen that CSPs based on superficially porous silica can successfully be used for the separation of enantiomers in both nano-LC and CEC mode. Only a slight advantage of CEC over nano-LC mode was observed in this study from the viewpoint of plate numbers, especially at higher mobile phase flow rates. It must also be noted that the optimal theoretical plate height is still too high and further optimization of superficially porous CSPs is necessary for both nano-LC and CEC applications.
机译:在这项研究中,评估了由涂覆在表面多孔(核-壳或熔融核)二氧化硅载体上的多糖类手性选择剂制成的各种手性固定相(CSP)的分离性能。研究了通过将各种数量的手性选择剂(1-5%)涂覆到各种孔径(100和300?)的载体上而获得的CSP。在手性纳米液相色谱(nano-LC)和手性毛细管电色谱(CEC)中都进行了评估。这项研究的目标之一是重新检验我们先前的意外发现,即对于一组新的手性化合物,其在CEC条件下与纳米LC条件相比在CEC条件下具有更好的表面多孔CSP性能,以及研究改变手性的效果选择剂含量和支撑二氧化硅的标称孔径对核-壳二氧化硅基多糖型CSPs性能的影响。根据这项研究的结果,可以看出基于表面多孔二氧化硅的CSP可以成功用于纳米LC和CEC模式下的对映体分离。从板数的角度来看,在这项研究中仅观察到CEC相对于纳米LC模式的微小优势,特别是在较高流动相流速下。还必须注意,最佳的理论塔板高度仍然过高,对于纳米LC和CEC应用,都需要进一步优化表面多孔的CSP。

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