毛细管电泳的有效和对称温度控制II:当冷却毛细管被绑在分析毛细管上时的热性能

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

摘要

目前市售的毛细管电泳仪缺乏沿整个毛细管延伸的中心对称和有效的温度控制。在这里,我们研究了由冷却毛细管(熔融硅微管)组成的冷却系统的特性和热性能,这些冷却毛细管被绑在分析毛细管的整个范围内。将6根内径仅为75µm(外径为320µm -不含聚酰亚胺)的冷却毛细管绑在外径为320µm(不含聚酰亚胺)的分析毛细管的外表面。捆扎过程在之前的出版物(J Sep Sci. 2025;48: e70081。https://doi.org/10.1002/jssc.70081)。在冷却液中施加0.25 bar/cm的压力梯度足以有效地去除热量并控制温度。可以施加非常强的电场,产生非常高和稳定的电流。在内径50µm的毛细管中施加超过3500伏/厘米的电场,毛细管中填充20 mM磷酸钠缓冲溶液,pH为7.20,冷却剂设置为25°C。这种冷却系统优于两种最常用的系统:强制空气和内部有毛细管的管道中的再循环液体冷却剂。采用有限元法对热方程进行数值求解,模拟了系统的空间稳态温度分布。数值结果证实了该冷却系统的中心对称温度分布和效率。引入了一个表明冷却不对称的客观参数,并用于量化这种新冷却系统的优越性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Efficient and Symmetric Temperature Control in Capillary Electrophoresis II: Thermal Performance When Cooling Capillaries Are Tied Around Analytical Capillaries

Efficient and Symmetric Temperature Control in Capillary Electrophoresis II: Thermal Performance When Cooling Capillaries Are Tied Around Analytical Capillaries

Efficient and Symmetric Temperature Control in Capillary Electrophoresis II: Thermal Performance When Cooling Capillaries Are Tied Around Analytical Capillaries

Current commercially available capillary electrophoresis instruments lack centrosymmetric and efficient temperature control along the whole extend of the capillary. Here we studied the characteristics and thermal performance of a cooling system that consists of cooling capillaries (fused silica microtubes) which are tied around the complete extent of the analytical capillaries. Six cooling capillaries with only 75 µm inner diameter (320 µm outer diameter—without polyimide) were tied around the outer surface of 320 µm outer diameter analytical capillaries (also without polyimide). The tying process is detailed in a previous publication (J Sep Sci. 2025; 48: e70081. https://doi.org/10.1002/jssc.70081). The application of a pressure gradient of 0.25 bar/cm in the cooling liquid was enough to efficiently remove heat and control temperature. Very strong electric fields could be applied, producing very high and stable electric currents. Fields beyond 3500 Volts/cm were applied in a 50 µm inner diameter capillary filled with 20 mM sodium phosphate buffer solution at pH 7.20 and the coolant set at 25°C. This cooling system outperformed the two most used systems: forced air and recirculating liquid coolant in a tube with a capillary inside. The spatial steady-state temperature profiles of the systems were simulated by numerically solving the heat equation using a finite element method. The centrosymmetric temperature profile and efficiency of this cooling system was corroborated by these numerical results. An objective parameter indicating cooling asymmetry was introduced and used to quantify the superior performance of this new cooling system.

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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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