Investigating the 197Au-31P spin-spin coupling interactions in gold-phosphine halides using solid-state nuclear magnetic resonance, spectral simulations, and quantum chemistry computations
Phosphorus-31 nuclear magnetic resonance spectroscopy with magic angle spinning was used to characterize 197Au-31P spin-spin coupling interactions in solid gold-phosphine halides and the spectra have been analyzed using perturbation theory. The 197Au nucleus has a natural abundance of 100%, a spin...
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ndltd-LACETR-oai-collectionscanada.gc.ca-AEU.10048-17342012-03-21T22:50:08ZWasylishen, Roderick (Chemistry)Dwan, Jerrod Ryan2011-01-12T17:29:43Z2011-01-12T17:29:43Z2011-01-12T17:29:43Zhttp://hdl.handle.net/10048/1734Phosphorus-31 nuclear magnetic resonance spectroscopy with magic angle spinning was used to characterize 197Au-31P spin-spin coupling interactions in solid gold-phosphine halides and the spectra have been analyzed using perturbation theory. The 197Au nucleus has a natural abundance of 100%, a spin of 3/2, and one of the smallest nuclear magnetic moments of all spin-active nuclei. Gold-197 has a very large nuclear quadrupole moment that leads to 197Au nuclear quadrupolar coupling constants of approximately 1 GHz, and thus the Zeeman interaction for 197Au is a perturbation on the quadrupolar interaction. The indirect spin-spin coupling constants, 1J(197Au,31P), extracted from our experiments are compared with those calculated using quantum chemistry computations. The calculations show that the Fermi-contact mechanism is the most important spin-spin coupling mechanism. Anisotropy in the 197Au-31P spin-spin coupling was shown to arise from the spin-dipolar Fermi-contact cross-term, and that its magnitude is on the same order as 1J(197Au,31P)iso.1833141 bytesapplication/pdfenInvestigating the 197Au-31P spin-spin coupling interactions in gold-phosphine halides using solid-state nuclear magnetic resonance, spectral simulations, and quantum chemistry computationsThesisMaster of ScienceMaster'sDepartment of ChemistryUniversity of Alberta2011-06Klobukowski, Mariusz (Chemistry)Szymanksi, Christine (Biological Sciences) |
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Phosphorus-31 nuclear magnetic resonance spectroscopy with magic angle spinning was used to characterize 197Au-31P spin-spin coupling interactions in solid gold-phosphine halides and the spectra have been analyzed using perturbation theory. The 197Au nucleus has a natural abundance of 100%, a spin of 3/2, and one of the smallest nuclear magnetic moments of all spin-active nuclei. Gold-197 has a very large nuclear quadrupole moment that leads to 197Au nuclear quadrupolar coupling constants of approximately 1 GHz, and thus the Zeeman interaction for 197Au is a perturbation on the quadrupolar interaction. The indirect spin-spin coupling constants, 1J(197Au,31P), extracted from our experiments are compared with those calculated using quantum chemistry computations. The calculations show that the Fermi-contact mechanism is the most important spin-spin coupling mechanism. Anisotropy in the 197Au-31P spin-spin coupling was shown to arise from the spin-dipolar Fermi-contact cross-term, and that its magnitude is on the same order as 1J(197Au,31P)iso. |
author2 |
Wasylishen, Roderick (Chemistry) |
author_facet |
Wasylishen, Roderick (Chemistry) Dwan, Jerrod Ryan |
author |
Dwan, Jerrod Ryan |
spellingShingle |
Dwan, Jerrod Ryan Investigating the 197Au-31P spin-spin coupling interactions in gold-phosphine halides using solid-state nuclear magnetic resonance, spectral simulations, and quantum chemistry computations |
author_sort |
Dwan, Jerrod Ryan |
title |
Investigating the 197Au-31P spin-spin coupling interactions in gold-phosphine halides using solid-state nuclear magnetic resonance, spectral simulations, and quantum chemistry computations |
title_short |
Investigating the 197Au-31P spin-spin coupling interactions in gold-phosphine halides using solid-state nuclear magnetic resonance, spectral simulations, and quantum chemistry computations |
title_full |
Investigating the 197Au-31P spin-spin coupling interactions in gold-phosphine halides using solid-state nuclear magnetic resonance, spectral simulations, and quantum chemistry computations |
title_fullStr |
Investigating the 197Au-31P spin-spin coupling interactions in gold-phosphine halides using solid-state nuclear magnetic resonance, spectral simulations, and quantum chemistry computations |
title_full_unstemmed |
Investigating the 197Au-31P spin-spin coupling interactions in gold-phosphine halides using solid-state nuclear magnetic resonance, spectral simulations, and quantum chemistry computations |
title_sort |
investigating the 197au-31p spin-spin coupling interactions in gold-phosphine halides using solid-state nuclear magnetic resonance, spectral simulations, and quantum chemistry computations |
publishDate |
2011 |
url |
http://hdl.handle.net/10048/1734 |
work_keys_str_mv |
AT dwanjerrodryan investigatingthe197au31pspinspincouplinginteractionsingoldphosphinehalidesusingsolidstatenuclearmagneticresonancespectralsimulationsandquantumchemistrycomputations |
_version_ |
1716390690882060288 |