Harnessing an elastic flow instability to improve the kinetic performance of chromatographic columns

IF 3.8 2区 化学 Q1 BIOCHEMICAL RESEARCH METHODS
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Abstract

Despite decades of research and development, the optimal efficiency of slurry-packed HPLC columns is still hindered by inherent long-range flow heterogeneity from the wall to the central bulk region of these columns. Here, we show an example of how this issue can be addressed through the straightforward addition of a semidilute amount (500 ppm) of a large, flexible, synthetic polymer (18 MDa partially hydrolyzed polyacrylamide, HPAM) to the mobile phase (1% NaCl aqueous solution, hereafter referred to as “brine”) during operation of a 4.6 mm × 300 mm column packed with 10μm BEHTM 125 Å particles. Addition of the polymer imparts elasticity to the mobile phase, causing the flow in the interparticle pore space to become unstable above a threshold flow rate. We verify the development of this elastic flow instability using pressure drop measurements of the friction factor versus Reynolds number. In prior work, we showed that this flow instability is characterized by large spatiotemporal fluctuations in the pore-scale flow velocities that may promote analyte dispersion across the column. Axial dispersion measurements of the quasi non-retained tracer thiourea confirm this possibility: they reveal that operating above the onset of the instability improves column efficiency by greater than 100%. These experiments thereby suggest that elastic flow instabilities can be harnessed to mitigate the negative impact of trans-column flow heterogeneities on the efficiency of slurry-packed HPLC columns. While this approach has its own inherent limitations and constraints, our results lay the groundwork for future targeted development of polymers that can impart elasticity when dissolved in commonly used liquid chromatography mobile phases, and can thereby generate elastic flow instabilities to help improve the resolution of HPLC columns.

利用弹性流动不稳定性改善色谱柱的动力学性能
尽管经过数十年的研究和开发,浆料填料高效液相色谱柱的最佳效率仍然受到从柱壁到中心体积区域固有的长程流动异质性的阻碍。在此,我们举例说明了如何在使用 10μm BEHTM 125 Å 颗粒的 4.6 mm × 300 mm 色谱柱运行期间,向流动相(1%氯化钠水溶液,以下简称 "盐水")中直接添加半稀释量(500 ppm)的大型柔性合成聚合物(18 MDa 部分水解聚丙烯酰胺,HPAM)来解决这一问题。聚合物的加入使流动相具有弹性,导致颗粒间孔隙中的流动在流速超过临界值时变得不稳定。我们利用摩擦因数与雷诺数的压降测量来验证这种弹性流动不稳定性的发展。在之前的工作中,我们发现这种流动不稳定性的特点是孔隙尺度流速的时空波动较大,这可能会促进分析物在色谱柱上的分散。对准非截留示踪剂硫脲进行的轴向分散测量证实了这种可能性:测量结果表明,在不稳定性起始点以上运行,色谱柱效率可提高 100%以上。因此,这些实验表明,可以利用弹性流动不稳定性来减轻跨柱流动异质性对浆料填料高效液相色谱柱效率的负面影响。虽然这种方法有其固有的局限性和制约因素,但我们的研究结果为今后有针对性地开发聚合物奠定了基础,这些聚合物溶解在常用液相色谱流动相中时可赋予其弹性,从而产生弹性流动不稳定性,帮助提高高效液相色谱柱的分辨率。
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来源期刊
Journal of Chromatography A
Journal of Chromatography A 化学-分析化学
CiteScore
7.90
自引率
14.60%
发文量
742
审稿时长
45 days
期刊介绍: The Journal of Chromatography A provides a forum for the publication of original research and critical reviews on all aspects of fundamental and applied separation science. The scope of the journal includes chromatography and related techniques, electromigration techniques (e.g. electrophoresis, electrochromatography), hyphenated and other multi-dimensional techniques, sample preparation, and detection methods such as mass spectrometry. Contributions consist mainly of research papers dealing with the theory of separation methods, instrumental developments and analytical and preparative applications of general interest.
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