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Developing and characterizing improved low-temperature plasma probes for ambient ionization mass spectrometry.

机译:开发和表征用于环境电离质谱的改进型低温等离子体探针。

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摘要

The emergence of ambient ionization mass spectrometry within the last decade with its minimal or no sample pretreatment has dramatically improved direct sampling measurements. With the introduction of the first ambient ionization techniques of desorption electrospray ionization (DESI) in 2004 and direct analysis in real time (DART) in 2005, there have been numerous sources described in the literature including low-temperature plasma (LTP) ionization sources. LTP ionization is notable for its simple design, low thermal temperatures, and low power and gas requirements that allow nondestructive sampling of compounds from sensitive surfaces such as human skin. This thesis details the development of improved LTP sources, the integration of these probes with miniature mass spectrometers, and the application of these sources to the quantitation of compounds. The first part of this thesis increases the utility of LTP sources by increasing the analyzable area that can be interrogated through the use of bundled source arrays. The sources have a larger sampling area that allows faster detection of each analyte, and selectivity towards the selected compounds is enhanced by adding reagents directly into the plasma stream.;The second part of this thesis integrates LTP sources with miniature mass spectrometers. This work was inspired by the idea of having a completely field portable mass spectrometer that is fully self contained without the need for external gas cylinders or solvents. The miniaturization of these probes allows for gases other than helium to be used with lower power requirements which simplifies the instrumentation. It is shown that a miniature mass spectrometer equipped with LTP probes can be used to detect explosives in situ without the need of solvents or gas cylinders. Unlike DESI or spray techniques, LTP-MS systems benefit most from probe-surface sampling angles ranging from perpendicular to geometry independent (GI) configurations. The optimal sampling angles and heating of the surface to improve detection of compounds is demonstrated.;The final chapter details the application of LTP-MS to the semi-quantitation of volatile and semi-volatile compounds. A fast and direct method is presented for the analysis of semi-volatile fragrance compounds without sample pretreatment. LTP is used to perform high-throughput analysis, determine limits of detection (LODs), and obtain semi-quantitation information on various surfaces. A peltier cooling device is used to enhance the retention time of compounds on a surface. The method allows the detection and quantitation of semi-volatile compounds in the low pg ranges with a commercially available cleaning product after 1 min of being applied to a vinyl tile surface.
机译:在过去的十年中,环境电离质谱技术以其极少的样品预处理或根本没有样品预处理的出现,大大改善了直接采样测量的水平。随着2004年首次引入解吸电喷雾电离(DESI)的环境电离技术和2005年进行实时直接分析(DART),文献中描述了许多来源,包括低温等离子体(LTP)电离来源。 LTP电离以其简单的设计,较低的温度以及较低的功率和气体要求而著称,从而可以无损地从人体皮肤等敏感表面取样化合物。本文详细介绍了改进的LTP来源的开发,这些探针与微型质谱仪的集成以及这些来源在化合物定量中的应用。本文的第一部分通过增加可分析的区域来提高LTP源的实用性,可通过使用捆绑的源阵列来询问该区域。这些离子源具有较大的采样面积,可以更快地检测每种分析物,并且通过将试剂直接添加到血浆流中来提高对所选化合物的选择性。本论文的第二部分将LTP离子源与微型质谱仪集成在一起。这项工作的灵感来自拥有一个完全现场可携带的,完全不需要任何外部气瓶或溶剂的便携式现场质谱仪的想法。这些探头的小型化允许使用氦气以外的其他气体以较低的功率要求,从而简化了仪器。结果表明,配备了LTP探针的微型质谱仪可用于现场检测爆炸物,而无需使用溶剂或气瓶。与DESI或喷涂技术不同,LTP-MS系统从探头表面采样角度(从垂直到独立于几何形状(GI)的配置)中受益最多。证明了最佳取样角度和表面加热效果,以改善化合物的检测效果。最后一章详细介绍了LTP-MS在挥发性和半挥发性化合物半定量中的应用。提出了一种无需样品预处理即可分析半挥发性香料的快速,直接方法。 LTP用于执行高通量分析,确定检测限(LOD)并获取各种表面上的半定量信息。珀耳帖冷却装置用于增加化合物在表面上的保留时间。该方法允许将低pg范围内的半挥发性化合物检测和定量,方法是将市售清洁产品涂在乙烯基瓷砖表面1分钟后。

著录项

  • 作者

    Dalgleish, Jon King.;

  • 作者单位

    Purdue University.;

  • 授予单位 Purdue University.;
  • 学科 Chemistry General.;Chemistry Analytical.
  • 学位 Ph.D.
  • 年度 2012
  • 页码 104 p.
  • 总页数 104
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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