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High resolution separation column Polystyrene

Fig. 3. Comparison of a high-throughput separation (left) with a conventional CPC separation (right). The efficiency of the CPC separation of PSS polystyrene standards is comparable in both cases the specific resolution factor is 4.3 for the Highspeed column as compared to 4.7 for the conventional analytical column. Fig. 3. Comparison of a high-throughput separation (left) with a conventional CPC separation (right). The efficiency of the CPC separation of PSS polystyrene standards is comparable in both cases the specific resolution factor is 4.3 for the Highspeed column as compared to 4.7 for the conventional analytical column.
Small particle size resins provide higher resolution, as demonstrated in Fig. 4.41. Low molecular weight polystyrene standards are better separated on a GIOOOHxl column packed with 5 /u,m resin than a GlOOOHg column packed with 10 /Ltm resin when compared in the same analysis time. Therefore, smaller particle size resins generally attain a better required resolution in a shorter time. In this context, SuperH columns are best, and Hhr and Hxl columns are second best. Most analyses have been carried out on these three series of H type columns. However, the performance of columns packed with smaller particle size resins is susceptible to some experimental conditions such as the sample concentration of solution, injection volume, and detector cell volume. They must be kept as low as possible to obtain the maximum resolution. Chain scissions of polymer molecules are also easier to occur in columns packed with smaller particle size resins. The flow rate should be kept low in order to prevent this problem, particularly in the analyses of high molecular weight polymers. [Pg.143]


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