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dc.contributor.advisoralbert, mitchell
dc.contributor.authorfitterman, avner
dc.date.accessioned2015-12-03t16:44:25z
dc.date.available2015-12-03t16:44:25z
dc.date.created2015
dc.date.issued2015-12-03
dc.identifier.urihttp://knowledgecommons.lakeheadu.ca/handle/2453/686
dc.description.abstractconventional magnetic resonance imaging (mri) modality is based on the magnetization that is formed by the influence of a strong polarizing magnetic field on the spin of protons, typically those of water molecules within the body. in hyperpolarized (hp) gas mri, a dramatic increase in spin polarization is achieved using spin-exchange optical pumping (seop), which allows images to be obtained with a high signal-to-noise ratio (snr). batch-mode custom-built polarizers can serve to produce the hp gas, however, such custom-built systems require optimization in terms of pressure and temperature parameters. this study is comprised of three objectives: i) gaining understanding regarding the physics of the nuclear polarization process of 129xe; ii) examining experimentally the pressure and temperature dependences of the polarization, similarly to the way it was done in previous studies; iii) exploiting this knowledge for the benefit of the optimization of the custom-built polarizer in our lab.en_us
dc.language.isoen_usen_us
dc.subjectmagnetic resonance imaging (mri)en_us
dc.subjecthyperpolarized gasen_us
dc.subjectxenon gasen_us
dc.titletheory and production of hyperpolarized xenon gasen_us
dc.typethesis
etd.degree.namemasters of scienceen_us
etd.degree.levelmasteren_us
etd.degree.disciplinephysicsen_us
etd.degree.grantor阿根廷vs墨西哥竞猜 en_us


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