论大分子热场流分馏中的聚焦机制

IF 1.2 4区 化学 Q4 BIOCHEMICAL RESEARCH METHODS Chromatographia Pub Date : 2024-06-17 DOI:10.1007/s10337-024-04344-w
Josef Janča
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引用次数: 0

摘要

对聚焦热场流分馏法分离溶液中大分子的潜力进行了批判性分析。过去曾对利用该技术高效分离微粒物质的实验条件进行过广泛研究,并得出了明确的结论。另一方面,关于如何有效利用聚焦热场流分馏技术分离溶液中的大分子的知识却非常匮乏且相互矛盾。一个重要的要求是应用足够的弛豫时间来建立样品在整个分离通道厚度上的初始稳态分布,尽可能靠近积聚壁,否则可能会出现严重的区域拓宽和错误保留。分馏样品溶液的浓度应尽可能低,但要保证检测器的准确响应,以避免粘性指状效应和瑞利-泰勒流体力学不稳定性,而且浓度不应超过大分子链开始重叠的临界浓度。本文讨论了实现或限制这种分离的重要条件。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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On the Focusing Mechanism in Thermal Field-Flow Fractionation of Macromolecules

The potential of separation of the macromolecules in solution by focusing thermal field-flow fractionation is critically analyzed. The experimental conditions of the high-performance separations of particulate species by this technique were extensively studied in the past and are well determined. On the other hand, very scarce and contradictory knowledge exists on the effective use of focusing thermal field-flow fractionation for the separation of macromolecules in solution. An important requirement is to apply the sufficient relaxation time to establish the initial steady-state distribution of the sample across the separation channel thickness, as close to the accumulation wall as possible, otherwise a serious zone broadening and false retention may occur. The concentration of the fractionated sample solution should be minimal, but allowing an accurate detector response, to avoid the viscous fingering and Rayleigh–Taylor hydrodynamic instabilities, and it should not exceed the critical concentration at which the macromolecular chains begin to overlap. The important conditions which enable or limit such separations are discussed.

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来源期刊
Chromatographia
Chromatographia 化学-分析化学
CiteScore
3.40
自引率
5.90%
发文量
103
审稿时长
2.2 months
期刊介绍: Separation sciences, in all their various forms such as chromatography, field-flow fractionation, and electrophoresis, provide some of the most powerful techniques in analytical chemistry and are applied within a number of important application areas, including archaeology, biotechnology, clinical, environmental, food, medical, petroleum, pharmaceutical, polymer and biopolymer research. Beyond serving analytical purposes, separation techniques are also used for preparative and process-scale applications. The scope and power of separation sciences is significantly extended by combination with spectroscopic detection methods (e.g., laser-based approaches, nuclear-magnetic resonance, Raman, chemiluminescence) and particularly, mass spectrometry, to create hyphenated techniques. In addition to exciting new developments in chromatography, such as ultra high-pressure systems, multidimensional separations, and high-temperature approaches, there have also been great advances in hybrid methods combining chromatography and electro-based separations, especially on the micro- and nanoscale. Integrated biological procedures (e.g., enzymatic, immunological, receptor-based assays) can also be part of the overall analytical process.
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