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Temperature-controlled microchip liquid chromatography system.

机译:温控微芯片液相色谱系统。

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摘要

High-performance liquid chromatography (HPLC) is one of the most important analytical tools heavily used in the fields of chemistry, biotechnology, pharmaceutics, and the food industry. The power of liquid chromatography comes from its ability to achieve molecular separation with extremely high efficiency and its great flexibility of incorporating versatile sensors for detecting a broad range of analytes. In the past decades, great efforts have been put into liquid chromatography instrumentation and methods, aiming to further improve separation efficiency, sensitivity, repeatability, throughput, and costs. The contribution of this thesis is to illustrate with real examples the great potential of MEMS microchip liquid chromatography systems with on-chip temperature control for replacing and improving the conventional desktop HPLC systems.;This thesis is composed of seven chapters. Chapter 1 gives an introduction to MEMS technology and its application in making lab-on-a-chip systems. Chapter 2 describes the theoretical background and the evolution of HPLC technology. Chapter 3 demonstrates how to use state-of-the-art MEMS technology to make high-pressure microfluidic channels, which will be used for constructing microchip HPLC systems later. Chapter 4 describes a temperature-controlled microchip HPLC system that uses a temporal temperature gradient to achieve analyte elution. Separation of amino acids and low density lipoproteins was successfully demonstrated using the proposed system. Chapter 5 describes a novel embedded HPLC system, which demonstrated a record high pressure capacity (> 1000 psi) among microchip HPLC systems. High quality separation results of trace-level daunorubicin and doxorubicin were obtained using the proposed system and laser-induced fluorescence detection. A novel C4D sensor together with the RISE sensitivity enhancement method was proposed and investigated for the first time for microchip HPLC analyte detection. Chapter 6 describes the first work to pack 30 nm gold nanoparticles into the HPLC separation column as the stationary phase with the assistance of in-situ molecular self-assembly between nanoparticles and thiolated molecules. Preliminary results demonstrated the possibility of building fully filled nanoparticle HPLC columns for extremely high separation efficiency application. Chapter 7 then gives the conclusions of this thesis.
机译:高效液相色谱(HPLC)是化学,生物技术,制药和食品工业领域中广泛使用的最重要的分析工具之一。液相色谱法的强大之处在于其以极高的效率实现分子分离的能力,以及其结合了用于检测多种分析物的多功能传感器的巨大灵活性。在过去的几十年中,液相色谱仪器和方法投入了巨大的努力,旨在进一步提高分离效率,灵敏度,可重复性,通量和成本。本文的贡献是通过实际的例子来说明具有片上温度控制功能的MEMS微芯片液相色谱系统在取代和改进传统台式HPLC系统方面的巨大潜力。本文共分七章。第1章介绍了MEMS技术及其在制作片上实验室系统中的应用。第2章介绍了HPLC技术的理论背景和发展。第3章演示了如何使用最先进的MEMS技术制作高压微流体通道,该通道将在以后用于构建微芯片HPLC系统。第4章介绍了一种温度控制的微芯片HPLC系统,该系统使用时间温度梯度来实现分析物的洗脱。使用提出的系统成功地证明了氨基酸和低密度脂蛋白的分离。第5章介绍了一种新型的嵌入式HPLC系统,该系统在微芯片HPLC系统中展示了创纪录的高压容量(> 1000 psi)。使用所提出的系统和激光诱导的荧光检测,获得了痕量柔红霉素和阿霉素的高质量分离结果。提出了一种新颖的C4D传感器以及RISE灵敏度增强方法,并首次用于微芯片HPLC分析物检测。第6章介绍了在纳米颗粒和硫醇化分子之间进行原位分子自组装的过程中将30 nm金纳米颗粒作为固定相填充到HPLC分离柱中的第一项工作。初步结果表明,可以构建完全填充的纳米HPLC色谱柱,以实现极高的分离效率。然后,第七章给出了本文的结论。

著录项

  • 作者

    Shih, Victor Chi-Yuan.;

  • 作者单位

    California Institute of Technology.;

  • 授予单位 California Institute of Technology.;
  • 学科 Engineering Electronics and Electrical.
  • 学位 Ph.D.
  • 年度 2006
  • 页码 180 p.
  • 总页数 180
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 无线电电子学、电信技术;
  • 关键词

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