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Applications and fundamental characterization of open air and acoustic-driven ionization methods for mass spectrometry.

机译:质谱的露天和声学驱动电离方法的应用和基本表征。

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摘要

One of the most fundamental challenges in analytical mass spectrometry (MS) is the efficient conversion of neutral molecules into intact gas-phase ions. In this thesis, I investigate the capabilities of various new and established ionization techniques including (a) the Array of Micromachined UltraSonic Electrosprays (AMUSE), (b) Direct Analysis in Real Time (DART) and (c) Electrospray Ionization (ESI) for bioanalytical and biomedical analysis purposes.;The AMUSE is a MicroElectroMechanical System (MEMS)-based device that was created as an alternative, and more sensitive approach for ion generation in an array format. In the AMUSE, the processes of droplet formation and DC droplet charging are separated allowing ionization of liquid samples using low charging voltages and a wide variety of solvents. Our analytical characterization work with the AMUSE showed that ion generation with this device was indeed possible, and that incorporation of a Venturi device increased signal stability and sensitivity due to enhanced droplet desolvation and increased ion transfer efficiency. A detailed investigation to determine the optimal source parameters for ionization of aqueous solutions of model compounds including reserpine, leucine enkephalin and cytochrome C was carried out and it was found that ionization was possible even without the application of a DC charging potential. Subsequent experiments using the thermometer ion method to characterize the AMUSE from a more fundamental point of view, showed that AMUSE ions are lower in internal energy than ESI ions, opening interesting possibilities for the mass spectrometric study of labile species. Furthermore, it was found that it was possible to manipulate the internal energy of the ion population by varying the parameters that most strongly affect desolvation and focusing.;Our studies with DART were directed at investigating its analytical potential. DART was applied to the identification of active ingredients (AIs) in low quality combination medicines that are used for the treatment of fever, the first clinical symptom that is observed for malaria. As these drugs are commonly sold in regions of the world (particularly Southeast Asia) where drug resistant malaria is endemic, their use may engender increased resistance against the few remaining effective antimalarials. The analytical utility of DART was further extended to the screening of counterfeit pharmaceuticals to determine their chemical composition and to aid in a collaborative forensic investigation aimed at identifying the sources of these fakes.
机译:分析质谱(MS)的最基本挑战之一是将中性分子有效转化为完整的气相离子。在这篇论文中,我研究了各种新的和已建立的电离技术的能力,这些技术包括:(a)微机械超声电喷雾阵列(AMUSE),(b)实时直接分析(DART)和(c)电喷雾电离(ESI)生物分析和生物医学分析目的。AMUSE是一种基于微机电系统(MEMS)的设备,是一种替代的,更灵敏的阵列格式离子产生方法。在AMUSE中,液滴的形成过程和DC液滴的充电过程是分开的,从而允许使用低充电电压和多种溶剂使液体样品电离。我们使用AMUSE进行的分析表征工作表明,使用该设备确实可以产生离子,并且由于增强的液滴去溶剂化能力和提高的离子转移效率,Venturi设备的加入提高了信号稳定性和灵敏度。进行了详细的研究以确定包括利血平,亮氨酸脑啡肽和细胞色素C在内的模型化合物水溶液的电离的最佳来源参数,并且发现即使不施加DC充电电势也可以进行电离。随后使用温度计离子法从更基本的角度表征AMUSE的实验表明,AMUSE离子的内能比ESI离子低,这为不稳定物种的质谱研究提供了有趣的可能性。此外,还发现可以通过改变对去溶剂化和聚焦最有影响的参数来控制离子种群的内能。;我们对DART的研究旨在研究其分析潜力。 DART用于鉴定用于治疗发烧的低质量组合药物中的活性成分(AIs),这是疟疾的首个临床症状。由于这些药物通常在耐药性疟疾流行的世界地区(尤其是东南亚)出售,因此使用它们可能会增加对少量有效抗疟药的耐药性。 DART的分析用途进一步扩展到了对假药的筛选,以确定其化学成分,并有助于旨在鉴定这些假货来源的合作法医调查。

著录项

  • 作者

    Hampton, Christina Young.;

  • 作者单位

    Georgia Institute of Technology.;

  • 授予单位 Georgia Institute of Technology.;
  • 学科 Chemistry Analytical.
  • 学位 Ph.D.
  • 年度 2009
  • 页码 333 p.
  • 总页数 333
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 化学;
  • 关键词

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