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Fundamental and practical studies of polymer separations by HPLC: I. Thermal gradients; II. Interparticle size exclusion; III. Ion-exchange separations of DNA oligomers.

机译:HPLC分离聚合物的基础和实践研究:I.热梯度;二。颗粒间尺寸排阻;三, DNA低聚物的离子交换分离。

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摘要

Reversed-phase liquid chromatography (RPLC) for polymer separations has gained much attention in the past decade but the actual retention mechanism is still a subject of debate. The first part of this dissertation studies the separation of polymers by RPLC. It concludes that the retention mechanism of polymers on RPLC can be explained by conventional, partition/adsorption chromatography theory. Linear Van't Hoff plots are obtained from isocratic, isothermal retention data of polystyrenes and poly(ethylene oxide)'s. Thermal gradients over the separation time and along the separation column's length were developed to enhance the separation of organic polymers. The advantages of these thermal gradients over conventional solvent gradients are discussed. A mathematical model is developed then to successfully predict the retention of polymers under thermal gradient conditions using isothermal retention data.; The second part of this dissertation focuses on one of the most basic and most important parameters in HPLC---the column void volume. Despite the fact that HPLC has been studied for over three decades, the column void volume remains a subject of debate as well. Most of the user-community assume that a column has a "fixed" void volume independent of the size of the analyte but leaders in the field argue that is not true for small solutes. It is concluded from the work reported here that a given column's void volume is unique for each different polymer analyte. The difference in the column void volume is attributed to exclusion effect caused by the different sizes of analytes. Void volumes of columns packed with various kinds of packing materials are examined. We report the first-ever observation that the void volume of a column packed with totally non-porous materials changes with the solute molar mass. A quantitative relationship between the column void volume and solute molar mass is established.; Finally, we investigate the retention behavior of synthetic oligonucleotides on a continuous-bed-matrix, strong anion-exchange column. The separation is shown to be based on the chain length of the oligonucleotide. The separation mechanism is an anion exchange process but hydrophobic interaction also plays a small role. Both organic mobile phase modifiers and column temperature significantly affect the retention of oligomers. A volatile buffer system, e.g., triethylamine acetate, is employed and no desalting procedure is required after the column separation step. The measured recoveries are 70% or higher. The loading capacity of an analytical column (UNOTM Q1 strong anion exchange column, 7 mm ID x 35 mm) is more than 366 micrograms.
机译:在过去的十年中,用于聚合物分离的反相液相色谱法(RPLC)备受关注,但实际的保留机制仍是一个争论的话题。本文的第一部分研究了RPLC对聚合物的分离。结论是,聚合物在RPLC上的保留机理可以用常规的分配/吸附色谱理论来解释。线性Van't Hoff图是从聚苯乙烯和聚环氧乙烷的等度,等温保留数据获得的。在整个分离时间内以及沿着分离塔的整个长度方向上的热梯度都得到了发展,以增强有机聚合物的分离。讨论了这些热梯度相对于常规溶剂梯度的优势。然后建立数学模型,以使用等温保留数据成功预测聚合物在热梯度条件下的保留。本文的第二部分着重于HPLC中最基本,最重要的参数之一-色谱柱空隙体积。尽管HPLC已经研究了三十多年,但色谱柱空隙体积仍然是一个争论的主题。大多数用户社区都认为色谱柱的“固定”空隙体积与分析物的大小无关,但该领域的负责人认为,对于小溶质而言,这是不正确的。从这里报道的工作可以得出结论,给定色谱柱的空隙体积对于每种不同的聚合物分析物都是唯一的。色谱柱空隙体积的差异归因于不同尺寸的分析物引起的排斥效应。检查填充有各种填充材料的色谱柱的空隙体积。我们首次报道观察到,填充有完全无孔材料的色谱柱的空隙体积随溶质摩尔质量而变化。建立柱空体积与溶质摩尔质量之间的定量关系。最后,我们研究了合成寡核苷酸在连续床基质,强阴离子交换柱上的保留行为。显示该分离是基于寡核苷酸的链长。分离机理是阴离子交换过程,但疏水作用也起很小的作用。有机流动相改性剂和色谱柱温度均会显着影响低聚物的保留率。使用挥发性缓冲系统,例如乙酸三乙胺,并且在柱分离步骤之后不需要脱盐步骤。测得的回收率为70%或更高。分析柱(UNOTM Q1强阴离子交换柱,7 mm ID x 35 mm)的装载量大于366微克。

著录项

  • 作者

    Liu, Qicai.;

  • 作者单位

    Duke University.;

  • 授予单位 Duke University.;
  • 学科 Chemistry Analytical.; Biology Molecular.
  • 学位 Ph.D.
  • 年度 1998
  • 页码 154 p.
  • 总页数 154
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 化学;分子遗传学;
  • 关键词

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