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Hyperpolarized and thermally polarized quadrupolar noble gas nuclei studied by nuclear magnetic resonance spectroscopy and magnetic resonance imaging.

机译:通过核磁共振波谱和磁共振成像研究了超极化和热极化的四极惰性气体核。

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摘要

This dissertation consists of several studies of two quadrupolar nuclei, 83Kr and 131Xe, with nuclear spin states of I = 9/2 and I = 3/2, respectively. These nuclei possess a nuclear electric quadrupole moment that strongly interacts with the surrounding electric field gradient (EFG). The quadrupolar interactions in these noble gas atoms dominate the longitudinal (T1) spin relaxation. To fully study these nuclei, high non-equilibrium nuclear spin polarization, referred to as hyperpolarization (hp), is generated using spin exchange optical pumping (SEOP). By employing this technique, enhanced nuclear magnetic resonance (NMR) signals many orders of magnitude above that of a thermally polarized (Boltzmann distribution of spin states) sample are possible and allow for experiments where signal averaging over long periods of time is prohibited (i.e. in vivo).;The gas phase 83Kr T1 is shown to be sensitive to the surface composition/chemistry and the surface-to-volume ratio in an ideal system of closest packed glass beads. Understanding the behavior of 83Kr in these conditions allows for its development as a surface sensitive probe that could provide information in opaque porous media environments. Similar relaxation behavior can be observed in 131Xe; however, the quadrupolar interactions experienced by 131Xe also induce an observable splitting in the NMR spectrum. This quadrupolar splitting is extremely sensitive to surfaces during periods of adsorption as well as to the magnetic field strength when a 131Xe atom is present in the bulk gas phase. As the influence on the quadrupolar splitting can be more readily observed than the relaxation of either 83Kr or 131Xe, the observed splitting in 131Xe NMR can provide helpful insights into quadrupolar behavior experienced by both nuclei. To develop a better understanding of the quadrupolar behavior, both 131Xe quadrupolar splitting and 83Kr relaxation are explored as functions of magnetic field strength, gas phase composition and co-adsorbing species.;In closing, improvements in polarization of 83Kr from line-narrowed diode array lasers as well as new delivery techniques have provided improvements that allow for the implementation of variable flip angle FLASH imaging sequence in an excised, intact rat lung. Additionally, initial evidence suggests the T1 of 83Kr can differentiate between the regions of the lung (the trachea, the bronchi and bronchioles, and the alveoli), which has potential as a diagnostic tool for the biomedical community. Improvements in signal intensity are needed to achieve in vivo studies, additional enhancements are possible through improved SEOP and by using isotopically enriched gases.
机译:本论文包括对两个四极核83Kr和131Xe的研究,其核自旋态分别为I = 9/2和I = 3/2。这些核具有与周围电场梯度(EFG)强烈相互作用的核四极矩。这些稀有气体原子中的四极相互作用主导了纵向(T1)自旋弛豫。为了充分研究这些核,使用自旋交换光泵浦(SEOP)产生了称为非极化(hp)的高非平衡核自旋极化。通过采用这种技术,增强的核磁共振(NMR)信号可能比热极化的样品(自旋态的玻耳兹曼分布)高出多个数量级,并允许进行禁止长时间平均信号的实验(即,在最紧密填充的玻璃珠的理想系统中,气相83Kr T1被证明对表面组成/化学性质和表面体积比敏感。了解83Kr在这些条件下的行为可以使其发展为一种表面敏感的探针,可以在不透明的多孔介质环境中提供信息。在131Xe中可以观察到类似的松弛行为。但是,131Xe经历的四极相互作用也引起了NMR光谱的可观察到的分裂。当在主体气相中存在131Xe原子时,这种四极分裂对吸附期间的表面以及磁场强度极为敏感。由于与83Kr或131Xe的弛豫相比,可以更容易地观察到对四极分裂的影响,因此在131Xe NMR中观察到的分裂可以为两个核经历的四极行为提供有用的见解。为了更好地理解四极行为,我们研究了131Xe四极分裂和83Kr弛豫与磁场强度,气相组成和共吸收物质的关系。最后,从线变窄的二极管阵列改善了83Kr的极化激光以及新的传送技术已经提供了改进,可以在完整无缺的大鼠肺中实施可变翻转角FLASH成像序列。此外,初步证据表明83Kr的T1可以区分肺部区域(气管,支气管和细支气管以及肺泡),这有可能成为生物医学界的诊断工具。需要进行信号强度的改善才能进行体内研究,通过改善SEOP和使用同位素富集的气体,可能还可以进一步增强信号强度。

著录项

  • 作者

    Stupic, Karl F.;

  • 作者单位

    Colorado State University.;

  • 授予单位 Colorado State University.;
  • 学科 Chemistry Physical.
  • 学位 Ph.D.
  • 年度 2010
  • 页码 213 p.
  • 总页数 213
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:37:09

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