Computational Study of the Rare Gas Fluorohydrides, Cyanohydrides, and Isocyanohydrides: Structures, Reactions, and Electronic Spectra

dc.contributor.advisorKlobukowski, Mariusz (Chemistry)
dc.contributor.authorvan Hoeve, Miriam
dc.date.accessioned2025-05-29T12:28:18Z
dc.date.available2025-05-29T12:28:18Z
dc.date.issued2020-11
dc.description.abstractLittle work on the electronic excited states of the family of HRgY (where Rg = rare gas and Y = electronegative group) compounds exist. There are two problems that are studied. The first is work aimed at extending the HRgY excited state area of research to include more work done on the electronic excited states of HRgF (where Rg = Ar, Kr, Xe, Rn) at the time-dependent density functional theory (TDDFT) level of theory. The effects of the Rg matrix and relativistic effects on the electronic spectra were investigated with scalar relativistic effects and spin-orbit coupling. The matrix caused the excitation energies to blue-shift (for all HRgF) and scalar relativistic effects caused them to red-shift (most significantly for HRnF). Spin-orbit coupling in HRnF altered its electronic spectrum significantly. A brief investigation of the computational efficiency of model core potentials (MCPs) in comparison to all-electron (AE) basis sets was done and it was found that MCP basis sets speed up excited state calculations while still giving similar results as the AE basis sets. The second problem addressed is the low-lying excited states (with spin-orbit coupling), structure, and reactions of HRnY and HXeY (where Y = CN, NC), specifically their isomerization and dissociation reactions. Isotopic substitution on reaction rates and the effectiveness of several pseudopotential basis sets was also studied for these systems. The work was done at the DFT, TDDFT, and Møller-Plesset (MP2) levels of theory.
dc.identifier.doihttps://doi.org/10.7939/r3-sa6h-dh25
dc.language.isoen
dc.rightsPermission is hereby granted to the University of Alberta Libraries to reproduce single copies of this thesis and to lend or sell such copies for private, scholarly or scientific research purposes only. Where the thesis is converted to, or otherwise made available in digital form, the University of Alberta will advise potential users of the thesis of these terms. The author reserves all other publication and other rights in association with the copyright in the thesis and, except as herein before provided, neither the thesis nor any substantial portion thereof may be printed or otherwise reproduced in any material form whatsoever without the author's prior written permission.
dc.subjectrare gas fluorohydrides
dc.subjectspin-orbit coupling
dc.subjectradon
dc.subjectpseudopotentials
dc.subjectrare gas cyanohydrides
dc.subjectxenon
dc.subjectmodel core potentials
dc.subjectrelativistic effects
dc.subjectelectronic spectra
dc.subjectkinetic isotope effect
dc.subjectrare gas
dc.subjectnobel gas
dc.subjectHNgY
dc.subjectHRgY
dc.subjectrare gas isocyanohydrides
dc.subjectelectronic excited states
dc.titleComputational Study of the Rare Gas Fluorohydrides, Cyanohydrides, and Isocyanohydrides: Structures, Reactions, and Electronic Spectra
dc.typehttp://purl.org/coar/resource_type/c_46ec
thesis.degree.grantorhttp://id.loc.gov/authorities/names/n79058482
thesis.degree.levelMaster's
thesis.degree.nameMaster of Science
ual.date.graduationFall 2020
ual.departmentDepartment of Chemistry
ual.jupiterAccesshttp://terms.library.ualberta.ca/public

Files

Original bundle

Now showing 1 - 1 of 1
Loading...
Thumbnail Image
Name:
van_Hoeve_Miriam_202004_MSc.pdf
Size:
4.32 MB
Format:
Adobe Portable Document Format