Efficient and Symmetric Temperature Control in Capillary Electrophoresis I: Tying Cooling Capillaries Around Analytical Capillaries

IF 2.8 3区 工程技术 Q2 CHEMISTRY, ANALYTICAL
Tarso B. Ledur Kist
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引用次数: 0

Abstract

The heat generated by the Joule effect during capillary electrophoresis (CE) runs creates radial temperature gradients in the separation medium. These temperature gradients cause zone dispersion in addition to molecular diffusion. This severely limits the field strengths that can be applied during the runs, especially when solutions with high ionic conductivity are used. This greatly increases run times, especially when high separation efficiencies are sought. In this work, the author proposes tying cooling capillaries (fused silica microtubes) along the external surface of the analytical capillary, allowing the circulation of coolants to efficiently and symmetrically control temperature in CE. The author deduced, step-by-step, the three master equations that serve as guidelines to produce a good match and tightly secure cooling capillaries along the outer surface of analytical capillaries. Additionally, an automated capillary tying machine was developed and demonstrated. Sets were produced with: four, five, and six cooling capillaries tied around one analytical capillary. The outer diameters of the capillaries used (one analytical and n $n$ cooling) and the values of the remaining voids left between the first and last cooling capillary are in good agreement with the predictions of the three master equations deduced in this work. To the author's knowledge, this is the first time that cooling capillaries were tied around analytical capillaries to produce an efficient and symmetric cooling system for CE and toroidal capillary electrophoresis.

毛细管电泳的有效和对称温度控制I:将冷却毛细管绑在分析毛细管周围
毛细管电泳(CE)运行过程中焦耳效应产生的热量在分离介质中产生径向温度梯度。除了分子扩散外,这些温度梯度还引起区域分散。这严重限制了在运行过程中可以应用的场强,特别是当使用高离子电导率的溶液时。这大大增加了运行时间,特别是在寻求高分离效率时。在这项工作中,作者建议沿分析毛细管的外表面系上冷却毛细管(熔融二氧化硅微管),允许冷却剂的循环,以有效和对称地控制CE中的温度。作者一步一步地推导出三个主方程,作为指导方针,以产生良好的匹配,并沿着分析毛细血管的外表面紧密地保护冷却毛细血管。此外,还开发并演示了一种自动毛细管捆扎机。套生产:四,五,和六个冷却毛细管绑在一个分析毛细管。所使用的毛细管的外径(一个解析和n$ n$冷却)和在第一个和最后一个冷却毛细管之间留下的剩余空隙的值与本工作中推导的三个主方程的预测很好地一致。据作者所知,这是第一次将冷却毛细管绑在分析毛细管周围,为CE和环形毛细管电泳产生有效和对称的冷却系统。
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来源期刊
Journal of separation science
Journal of separation science 化学-分析化学
CiteScore
6.30
自引率
16.10%
发文量
408
审稿时长
1.8 months
期刊介绍: The Journal of Separation Science (JSS) is the most comprehensive source in separation science, since it covers all areas of chromatographic and electrophoretic separation methods in theory and practice, both in the analytical and in the preparative mode, solid phase extraction, sample preparation, and related techniques. Manuscripts on methodological or instrumental developments, including detection aspects, in particular mass spectrometry, as well as on innovative applications will also be published. Manuscripts on hyphenation, automation, and miniaturization are particularly welcome. Pre- and post-separation facets of a total analysis may be covered as well as the underlying logic of the development or application of a method.
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