Abstract
dc:description.abstract<p>The advantages of rapid-scan EPR relative to CW and pulse techniques for samples with long longitudinal relaxation time T<sub>1</sub> (N<sub>s</sub><sup>0</sup> defects in diamond, N@C<sub>60</sub>, and amorphous hydrogenated silicon), heterogeneous samples (crystalline 1:1 α,γ-bisdiphenylene-β-phenylallyl (BDPA):benzene), lossy samples (aqueous nitroxyl radicals), and transient radicals (5-tert-butoxycarbonyl-5-methyl-1-pyrroline-N-oxide (BMPO)-superoxide adduct) were studied.</p> <p>For samples with long relaxation times, CW (continuous wave) EPR is challenging due to power saturation and distortions from passage effects. In rapid-scan EPR, the field is swept through resonance in a time that is short relative to T<sub>2</sub>. In rapid-scan EPR, the magnetic field is on resonance for a short time relative to CW EPR. Because of this, the energy absorbed by the spins, for the same microwave B<sub>1</sub>, is less than in conventional CW spectra, and the signal does not saturate as readily. For samples with long electron relaxation times, pulse techniques can also be challenging, particularly if T<sub>2</sub> is long and T<sub>2</sub>* is short. Rapid-scan EPR is a powerful alternative to CW and pulse EPR because it is a straight-forward technique that does not require the high power of pulse EPR. For the samples studied, improvements in signal-to-noise ranging from factors of 10 to 250 were observed.</p> <p>Rapid-scan can also be used to extract relaxation information from a sample. The rapid-scan spectra for lithium phthalocyanine (LiPc) and <sup>15</sup>N-PDT (4-oxo-2,2,6,6-tetra-perdeuteromethyl-piperidinyl-<sup>15</sup>N-oxyl-d<sub>16</sub>) were simulated to determine T<sub>2</sub>. The extraction of T<sub>2</sub> from the rapid-scan spectra of BDPA was also attempted. Through our difficulty in simulating the rapid-scan spectra of BDPA, we realized that commercial BDPA was not a homogeneous sample. The experiments studying BDPA demonstrated that rapid-scan experiments can give insight into the relaxation of a sample that might not otherwise be evident with conventional CW EPR.</p> <p>Finally, rapid-scan EPR at X-band was applied to spin trapping experiments. Superoxide was generated by the reaction of xanthine oxidase and hypoxanthine and trapped with BMPO. Spin trapping with 5-tert-butoxycarbonyl-5-methyl-1-pyrroline N-oxide (BMPO) to form BMPO-OOH adduct converts the short-lived superoxide into a more stable spin adduct. The detection limit for spin-trapped superoxide was compared between CW and rapid-scan EPR. The signal-to-noise ratio was more than 40 times greater for rapid-scan than for CW EPR. We also demonstrated detection of superoxide produced by <em>Enterococcus faecalis</em> at rates that are too low for detection by CW EPR.</p>
Degree
thesis:*- Name thesis:degree_name
- Ph.D.
- Level thesis:degree_level
- Dissertation
- Year dc:date.available
- 2013
Author and committee
dc:creator, dc:contributor.*- Author dc:creator
-
- Mitchell, Deborah Gale
- Contributors dc:contributor
-
- Gareth R. Eaton, Ph.D.
- Sandra S. Eaton, Ph.D.
- Andrei G. Kutateladze
- Michelle Knowles
- Martin Margittai
- Daniel Linseman
Subjects
dc:subject × 8Rights
dc:rights- Statement dc:rights
-
- <p>Copyright is held by the author. User is responsible for all copyright compliance.</p>
- Language dc:language
- en
Identifiers
dc:identifier.*- Repository record dc:identifier
- https://digitalcommons.du.edu/etd/436
- OAI identifier oai:identifier
- oai:digitalcommons.du.edu:etd-1435