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Field electron emission from diamond and related films synthesized by plasma enhanced chemical vapor deposition

dc.contributor.advisorHirose, Akiraen_US
dc.contributor.advisorXiao, Chijinen_US
dc.contributor.committeeMemberMitchell, Caroline E. J. (Katie)en_US
dc.contributor.committeeMemberManson, Alanen_US
dc.contributor.committeeMemberKasap, Safa O.en_US
dc.contributor.committeeMemberBradley, Michael P.en_US
dc.contributor.committeeMemberSmolyakov, Andrei I.en_US
dc.contributor.committeeMemberTsui, Yingen_US
dc.creatorLu, Xianfengen_US
dc.date.accessioned2006-12-21T11:46:38Zen_US
dc.date.accessioned2013-01-04T05:12:29Z
dc.date.available2007-12-21T08:00:00Zen_US
dc.date.available2013-01-04T05:12:29Z
dc.date.created2006-12en_US
dc.date.issued2006-12en_US
dc.date.submittedDecember 2006en_US
dc.description.abstractThe focus of this thesis is the study of the field electron emission (FEE) of diamond and related films synthesized by plasma enhanced chemical vapor deposition. The diamond and related films with different morphologies and compositions were prepared in a microwave plasma-enhanced chemical vapor deposition (CVD) reactor and a hot filament CVD reactor. Various analytical techniques including scanning electron microscopy (SEM), atomic force microscopy (AFM), and Raman spectroscopy were employed to characterize the surface morphology and chemical composition.The influence of surface morphology on the field electron emission property of diamond films was studied. The emission current of well-oriented microcrystalline diamond films is relatively small compared to that of randomly oriented microcrystalline diamond films. Meanwhile, the nanocrystalline diamond film has demonstrated a larger emission current than microcrystalline diamond films. The nanocone structure significantly improves the electron emission current of diamond films due to its strong field enhancement effect.The sp2 phase concentration also has significant influence on the field electron emission property of diamond films. For the diamond films synthesized by gas mixture of hydrogen and methane, their field electron emission properties were enhanced with the increase of methane concentration. The field electron emission enhancement was attributed to the increase of sp2 phase concentration, which increases the electrical conductivity of diamond films. For the diamond films synthesized through graphite etching, the growth rate and nucleation density of diamond films increase significantly with decreasing hydrogen flow rate. The field electron emission properties of the diamond films were also enhanced with the decrease of hydrogen flow rate. The field electron emission enhancement can be also attributed to the increase of the sp2 phase concentration. In addition, the deviation of the experimental Fowler-Nordheim (F-N) plot from a straight line was observed for graphitic nanocone films. The deviation can be mainly attributed to the nonuniform field enhancement factor of the graphitic nanocones. In low macroscopic electric field regions, electrons are emitted mainly from nanocone or nanocones with the largest field enhancement factor, which corresponds to the smallest slope magnitude. With the increase of electric field, nanocones with small field enhancement factors also contribute to the emission current, which results in a reduced average field enhancement factor and therefore a large slope magnitude.en_US
dc.identifier.urihttp://hdl.handle.net/10388/etd-12212006-114638en_US
dc.language.isoen_USen_US
dc.subjectchemical vapor depositionen_US
dc.subjectdiamond filmsen_US
dc.subjectfield electron emissionen_US
dc.titleField electron emission from diamond and related films synthesized by plasma enhanced chemical vapor depositionen_US
dc.type.genreThesisen_US
dc.type.materialtexten_US
thesis.degree.departmentPhysics and Engineering Physicsen_US
thesis.degree.disciplinePhysics and Engineering Physicsen_US
thesis.degree.grantorUniversity of Saskatchewanen_US
thesis.degree.levelDoctoralen_US
thesis.degree.nameDoctor of Philosophy (Ph.D.)en_US

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