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Instrumental Idiosyncrasies Affecting the Performance of Ultrafast Chiral and Achiral Sub/Supercritical Fluid Chromatography

机译:仪器特质影响超快手性和非手性亚/超临界流体色谱的性能

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It is widely accepted that column technology is ahead of existing chromatographic instruments. The chromatographic output may not reflect the true picture of the peak profile inside the column. The instrumental optimization parameters become far more important when peaks elute in a few seconds. In this work, the low viscosity advantage of the supercritical/subcritical CO2 is coupled with the high efficiency of narrow particle size distribution silica. Using short efficient columns and high flow rates (up to 19 mL/min), separations on the order of a few seconds are demonstrated. In the domain of ultrafast supercritical fluid chromatography (SFC), unexpected results are seen which are absent in ultrafast liquid chromatography. These effects arise due to the compressible nature of the mobile phase and detector idiosyncrasies to eliminate back-pressure regulator noise. We demonstrate unusual connection tubing effects with 50, 75, 127, 254, and 500 mu m tubings and show the complex relation of dead time, retention time, efficiency, and optimum velocity with the tubing diameter (via column outlet pressure). Fourier analysis at different back-pressure regulator (BPR) settings shows that some instruments have very specific noise frequencies originating from the BPR, and those specific frequencies vanish under certain conditions. The performance of embedded digital filters, namely, moving average, numerically simulated low pass RC, and Gaussian kernels, is compared. This work also demonstrates, using a simple derivative test, that some instruments employ interpolation techniques while sampling at "true" low frequencies to avoid picking up high frequency noise. Researchers engaged in ultrafast chromatography need to be aware of the instrumental nuances and optimization procedures for achieving ultrafast chiral or achiral separations in SFC mode.
机译:色谱柱技术领先于现有色谱仪器已被广泛接受。色谱输出可能无法反映色谱柱内峰轮廓的真实图像。当峰在几秒钟内洗脱时,仪器优化参数变得更加重要。在这项工作中,超临界/亚临界CO2的低粘度优势与窄粒度分布二氧化硅的高效结合。使用短而高效的色谱柱和高流速(最高19 mL / min),分离速度可达到几秒钟。在超快速超临界流体色谱(SFC)领域中,可以看到超快速液相色谱所没有的出乎意料的结果。这些影响是由于流动相的可压缩性和检测器特有的特性以消除背压调节器噪声而产生的。我们展示了使用50、75、127、254和500μm管道的非凡连接管道效果,并显示了空载时间,保留时间,效率和最佳速度与管道直径(通过色谱柱出口压力)的复杂关系。在不同的背压调节器(BPR)设置下进行的傅立叶分析表明,某些仪器具有源自BPR的非常特定的噪声频率,并且这些特定频率在某些条件下会消失。比较了嵌入式数字滤波器的性能,即移动平均,数值模拟的低通RC和高斯内核。这项工作还通过简单的导数测试证明,某些仪器在采用“真实”低频采样时采用插值技术,以避免拾取高频噪声。从事超快速色谱的研究人员需要了解在SFC模式下实现超快速手性或非手性分离所需的仪器细微差别和优化程序。

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