The high resolution spectroscopy of manganese oxide
This thesis reports studies of the electronic spectrum of gaseous MnO. The (0,0) band of the A⁶Σ +-X⁶ Σ+ electronic transition of MnO was recorded by intermodulated laser-induced fluorescence over the range 17770 - 17970 cm⁻¹. The hyperfine structure caused by the ⁵⁵Mn nucleus (I = 5/2) is almost co...
Main Author: | |
---|---|
Language: | English |
Published: |
University of British Columbia
2010
|
Online Access: | http://hdl.handle.net/2429/27405 |
id |
ndltd-UBC-oai-circle.library.ubc.ca-2429-27405 |
---|---|
record_format |
oai_dc |
spelling |
ndltd-UBC-oai-circle.library.ubc.ca-2429-274052018-01-05T17:44:09Z The high resolution spectroscopy of manganese oxide Chandrakumar, Thambirajah This thesis reports studies of the electronic spectrum of gaseous MnO. The (0,0) band of the A⁶Σ +-X⁶ Σ+ electronic transition of MnO was recorded by intermodulated laser-induced fluorescence over the range 17770 - 17970 cm⁻¹. The hyperfine structure caused by the ⁵⁵Mn nucleus (I = 5/2) is almost completely resolved. Internal hyperfine perturbations between the F₃ and F₄electron spin components (where N = J - 1/2 and N = J + 1/2, respectively) occur in the ground state of MnO. These are caused by hyperfine matrix elements of the type ΔN = ΔF = 0.ΔJ = ± 1. Extra lines obeying the selection rules ΔJ = 0, ± 2 are also induced. Therefore, [sup P]Q₃₄, [sup R]Q₄₃, [sup P]Q₄₃ and [sup R]S₃₄ branches appear in the spectrum although they are not allowed in parallel transitions. The reason for the great complexity of the spectra is the occurrence of a large avoided crossing near N = 26 in the A⁶Σ + v = 0 level by another electronic state, B⁶Σ +, with the same multiplicity and symmetry. The perturbation between the A⁶Σ + and B⁶Σ + states arises from electrostatic interaction. The selection rules for electrostatic perturbations are ΔJ = ΔS = Δ∧ = ΔΩ = 0. The perturbing state B⁶Σ + state has a considerably longer bond length so that it must come from a "charge transfer transition", possibly by electron transfer either from the 3π to the 4π orbital or from 8σ to 10σ. However, the A⁶Σ + state has only a small bond length change compared to the ground state so that it comes from a "Valence state transition". The Fermi contact constant b was found to be negative for the A⁶Σ + state and this confirms the electronic configuration as being (8σ² 3 π⁴) 1δ² 4 π ² 10σ¹. The ground state is free of perturbations, except for the internal hyperfine perturbations, and is in nearly pure case (b) coupling. Various satellite branches which were observed in the B-X transition confirm the case (a) nature of the B⁶Σ + state at low N. The spacing between the main branches and the satellite branches gives values for the spin-spin parameter λ and the spin-rotation parameter γ of the ground state. Science, Faculty of Chemistry, Department of Graduate 2010-08-16T03:23:40Z 2010-08-16T03:23:40Z 1989 Text Thesis/Dissertation http://hdl.handle.net/2429/27405 eng For non-commercial purposes only, such as research, private study and education. Additional conditions apply, see Terms of Use https://open.library.ubc.ca/terms_of_use. University of British Columbia |
collection |
NDLTD |
language |
English |
sources |
NDLTD |
description |
This thesis reports studies of the electronic spectrum of gaseous MnO. The (0,0) band of the A⁶Σ +-X⁶ Σ+ electronic transition of MnO was recorded by intermodulated laser-induced fluorescence over the range 17770 - 17970 cm⁻¹. The hyperfine structure caused by the ⁵⁵Mn nucleus (I = 5/2) is almost completely resolved. Internal hyperfine perturbations between the F₃ and F₄electron spin components (where N = J - 1/2 and N = J + 1/2, respectively) occur in the ground state of MnO. These are caused by hyperfine matrix elements of the type ΔN = ΔF = 0.ΔJ = ± 1. Extra lines obeying the selection rules ΔJ = 0, ± 2 are also induced. Therefore, [sup P]Q₃₄, [sup R]Q₄₃, [sup P]Q₄₃ and [sup R]S₃₄ branches appear in the spectrum although they are not allowed in parallel transitions.
The reason for the great complexity of the spectra is the occurrence of a large avoided crossing near N = 26 in the A⁶Σ + v = 0 level by another electronic state, B⁶Σ +, with the same multiplicity and symmetry. The perturbation between the A⁶Σ + and B⁶Σ + states arises from electrostatic interaction. The selection rules for electrostatic perturbations are ΔJ = ΔS = Δ∧ = ΔΩ = 0. The perturbing state B⁶Σ + state has a considerably longer bond length so that it must come from a "charge transfer transition", possibly by electron transfer either from the 3π to the 4π orbital or from 8σ to 10σ. However, the A⁶Σ + state has only a small bond length change compared to the ground state so that it comes from a "Valence state transition". The Fermi contact constant b was found to be negative for the A⁶Σ + state and this confirms the electronic configuration as being (8σ² 3 π⁴) 1δ² 4 π ² 10σ¹.
The ground state is free of perturbations, except for the internal hyperfine perturbations, and is in nearly pure case (b) coupling. Various satellite branches which were observed in the B-X transition confirm the case (a) nature of the B⁶Σ + state at low N. The spacing between the main branches and the satellite branches gives values for the spin-spin parameter λ and the spin-rotation parameter γ of the ground state. === Science, Faculty of === Chemistry, Department of === Graduate |
author |
Chandrakumar, Thambirajah |
spellingShingle |
Chandrakumar, Thambirajah The high resolution spectroscopy of manganese oxide |
author_facet |
Chandrakumar, Thambirajah |
author_sort |
Chandrakumar, Thambirajah |
title |
The high resolution spectroscopy of manganese oxide |
title_short |
The high resolution spectroscopy of manganese oxide |
title_full |
The high resolution spectroscopy of manganese oxide |
title_fullStr |
The high resolution spectroscopy of manganese oxide |
title_full_unstemmed |
The high resolution spectroscopy of manganese oxide |
title_sort |
high resolution spectroscopy of manganese oxide |
publisher |
University of British Columbia |
publishDate |
2010 |
url |
http://hdl.handle.net/2429/27405 |
work_keys_str_mv |
AT chandrakumarthambirajah thehighresolutionspectroscopyofmanganeseoxide AT chandrakumarthambirajah highresolutionspectroscopyofmanganeseoxide |
_version_ |
1718593358823161856 |