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首页> 外文期刊>Journal of chromatography, A: Including electrophoresis and other separation methods >Fast estimation of adsorption isotherm parameters in gradient elution preparative liquid chromatography. I: The single component case
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Fast estimation of adsorption isotherm parameters in gradient elution preparative liquid chromatography. I: The single component case

机译:梯度洗脱制备液相色谱法快速估算吸附等温线参数。一:单件案例

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The inverse method is a numeric method for fast estimation of adsorption isotherm parameters directly from overloaded elution profiles. However, it has previously only been used for isocratic experiments. Here we will extend the inverse method so it can be used for gradient elution too. This extended inverse method will make it possible to study the adsorption of substances whose retention factor vary strongly with the mobile-phase composition, like peptides and proteins, where the classic methods will fail. Our extended inverse method was verified using both simulations and real experiments. For simulated overloaded elution profiles we were able to determine almost exact Langmuir adsorption isotherm parameters with the new approach. From real experimental data, bi-Langmuir adsorption parameters were estimated using both the perturbation peak method and the extended inverse method. The shape of the acquired adsorption isotherms did match over the considered concentration range; however, the adsorption isotherm parameters found with the two methods were not the same. This is probably due to the fact that adsorption isotherm estimated with the inverse method is only a good approximation up to the highest eluted concentration in the used chromatograms. But this is not a serious drawback from a process point of view where the main objective is to make accurate predictions of elution profiles. The bi-Langmuir adsorption isotherm obtained with both methods could accurately predict the shape of overloaded elution profiles.
机译:逆方法是直接从超载洗脱曲线快速估算吸附等温线参数的数值方法。但是,它以前仅用于等度实验。在这里,我们将扩展逆方法,以便它也可以用于梯度洗脱。这种扩展的逆方法将使研究保留因子随流动相组成而变化很大的物质(如肽和蛋白质)的吸附成为可能,而经典方法将无法使用这些物质。我们的扩展逆方法已通过仿真和实际实验验证。对于模拟的过载洗脱曲线,我们能够使用新方法确定几乎准确的Langmuir吸附等温线参数。从实际实验数据,使用扰动峰法和扩展逆方法都估计了双朗缪尔吸附参数。在所考虑的浓度范围内,所获得的吸附等温线的形状确实匹配。然而,两种方法发现的吸附等温线参数并不相同。这可能是由于以下事实:用逆方法估算的吸附等温线仅是一个很好的近似值,直到所用色谱图中的最高洗脱浓度为止。但是,从过程的角度来看,这并不是一个严重的缺点,在过程中,主要目标是对洗脱曲线进行准确的预测。两种方法获得的双朗缪尔吸附等温线可以准确预测超负荷洗脱曲线的形状。

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