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Temperature-assisted solute focusing with sequential trap/release zones in isocratic and gradient capillary liquid chromatography: Simulation and experiment

机译:等度和梯度毛细管液相色谱中具有顺序捕集/释放区的温度辅助溶质聚焦:模拟和实验

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摘要

In this work we characterize the development of a method to enhance temperature-assisted on-column solute focusing (TASF) called two-stage TASF. A new instrument was built to implement two-stage TASF consisting of a linear array of three independent, electronically controlled Peltier devices (thermoelectric coolers, TECs). Samples are loaded onto the chromatographic column with the first two TECs, TEC A and TEC B, cold. In the two-stage TASF approach TECs A and B are cooled during injection. TEC A is heated following sample loading. At some time following TEC A’s temperature rise, TEC B’s temperature is increased from the focusing temperature to a temperature matching that of TEC A. Injection bands are focused twice on-column, first on the initial TEC, e.g. single-stage TASF, then refocused on the second, cold TEC. Our goal is to understand the two-stage TASF approach in detail. We have developed a simple yet powerful digital simulation procedure to model the effect of changing temperature in the two focusing zones on retention, band shape and band spreading. The simulation can predict experimental chromatograms resulting from spatial and temporal temperature programs in combination with isocratic and solvent gradient elution. To assess the two-stage TASF method and the accuracy of the simulation well characterized solutes are needed. Thus, retention factors were measured at six temperatures (25–75 °C) at each of twelve mobile phases compositions (0.05–0.60 acetonitrile/water) for homologs of n-alkyl hydroxylbenzoate esters and n-alkyl p-hydroxyphenones. Simulations accurately reflect experimental results in showing that the two-stage approach improves separation quality. For example, two-stage TASF increased sensitivity for a low retention solute by a factor of 2.2 relative to single-stage TASF and 8.8 relative to isothermal conditions using isocratic elution. Gradient elution results for two-stage TASF were more encouraging. Application of two-stage TASF increased peak height for the least retained solute in the test mixture by a factor of 3.2 relative to single-stage TASF and 22.3 compared to isothermal conditions for an injection four-times the column volume. TASF improved resolution and increased peak capacity; for a 12-minute separation peak capacity increased from 75 under isothermal conditions to 146 using single-stage TASF, and 185 for two-stage TASF.
机译:在这项工作中,我们描述了一种增强温度辅助柱上溶质聚焦(TASF)的方法的发展,该方法称为两阶段TASF。建造了一种新仪器来实施两级TASF,该TASF由三个独立的电控Peltier设备(热电冷却器,TEC)组成的线性阵列组成。将样品与前两个TEC(TEC A和TEC B)一起冷装到色谱柱上。在两阶段TASF方法中,在注射过程中冷却TEC A和B。样品加载后,TEC A被加热。在TEC A升温之后的某个时间,TEC B的温度从聚焦温度升高到与TEC A相匹配的温度。注入带在柱上聚焦两次,首先在初始TEC上聚焦,例如单级TASF,然后重新聚焦于第二个冷TEC。我们的目标是详细了解两阶段TASF方法。我们已经开发了一种简单而功能强大的数字仿真程序,以模拟两个聚焦区域中温度变化对保持力,谱带形状和谱带扩展的影响。该模拟可以预测由空间和时间温度程序结合等度和溶剂梯度洗脱产生的实验色谱图。为了评估两阶段TASF方法和仿真的准确性,需要有特征明确的溶质。因此,在六个温度(25–75°C)下,在十二个流动相组合物(0.05–0.60乙腈/水)中,分别测定了正烷基羟基苯甲酸酯和正烷基对羟基苯酮的同系物的保留因子。仿真准确地反映了实验结果,表明两步法可提高分离质量。例如,两步TASF对低保留溶质的灵敏度相对于单步TASF而言提高了2.2倍,相对于使用等度洗脱的等温条件而言则提高了8.8倍。两阶段TASF的梯度洗脱结果更令人鼓舞。与等温条件相比,采用两阶段TASF进行测试混合物中保留最少的溶质的峰高相对于单阶段TASF而言增加了3.2倍,而与等温条件相比,进样量是色谱柱体积的四倍,峰高增加了22.3倍。 TASF提高了分离度并提高了峰容量;对于12分钟分离,使用单级TASF的峰容量从等温条件下的75增加到146,对于两级TASF,峰容量从185提高到185。

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