A Comprehensive Investigation of Photoinduced Electron Transfer and Charge Transfer Mechanisms in Push-Pull Donor-Acceptor Systems: Implications for Energy Harvesting Applications

dc.contributor.advisorD’Souza, Francis
dc.contributor.authorAlsaleh, Ajyal Zaki
dc.date.accessioned2023-12-13T07:28:53Z
dc.date.available2023-12-13T07:28:53Z
dc.date.issued2023-12-15
dc.description.abstractAlsaleh, Ajyal Zaki. A Comprehensive Investigation of Photoinduced Electron Transfer and Charge Transfer Mechanisms in Push-Pull Donor-Acceptor Systems: Implications for Energy Harvesting Applications. Doctor of Philosophy (Chemistry), October 2023, 272 pages, 11 tables, 96 figures, 7 schemata, 1 appendix, and 356 numbered references. Donor-acceptor systems exhibit distinctive attributes rendering them highly promising for the emulation of natural photosynthesis and the efficient capture of solar energy. This dissertation is primarily devoted to the investigation of these unique features within diverse donor-acceptor system typologies, encompassing categories such as closely covalently linked, push-pull, supramolecular, and multi-modular donor- acceptor conjugates. The research encompasses an examination of photosynthetic analogs involving compounds such as chelated azadipyromethene (AzaBODIPY), N,N-dimethylaminophenyl (NND), phenothiazine (PTZ), triphenylamine (TPA), phenothiazine sulfone (PTZSO2), tetracyanobutadiene (TCBD), and expanded tetracyanobutadiene (exTCBD). The strategic configuration of the donor (D), acceptor (A), and spacer elements within these constructs serves to promote intramolecular charge transfer (ICT), which are crucial for efficient charge and electron transfer. The employment of cutting-edge analytical techniques, such as ultrafast transient absorption spectroscopy, is integral to the study. Furthermore, a comprehensive suite of analytical methodologies including steady-state UV-visible absorption spectroscopy, fluorescence and phosphorescence spectroscopies, electrochemical techniques (including cyclic voltammetry and differential pulse voltammetry), spectroelectrochemistry, and density functional theory calculation (DFT), collectively contribute to the comprehensive characterization of push-pull donor-acceptor systems, with a particular emphasis on their potential as highly effective solar energy harvesting application.
dc.format.extent270
dc.identifier.citationAlsaleh Ajyal Zaki and Francis D'Souza. 2023. “A Comprehensive Investigation of Photoinduced Electron Transfer and Charge Transfer Mechanisms in Push-Pull Donor-Acceptor Systems: Implications for Energy Harvesting Applications.” Dissertation University of North Texas. University of North Texas.
dc.identifier.urihttps://hdl.handle.net/20.500.14154/70200
dc.language.isoen_US
dc.publisherUniversity of North Texas
dc.subjectElectron Transfer
dc.subjectCharge Transfer
dc.subjectPush-Pull System
dc.subjectDonor-Acceptor
dc.subjectTetracyanobutadiene
dc.subjectazadipyromethene (AzaBODIPY)
dc.subjectN-dimethylaminophenyl (NND)
dc.subjectphenothiazine (PTZ)
dc.titleA Comprehensive Investigation of Photoinduced Electron Transfer and Charge Transfer Mechanisms in Push-Pull Donor-Acceptor Systems: Implications for Energy Harvesting Applications
dc.typeThesis
sdl.degree.departmentChemistry
sdl.degree.disciplineAnalytical Chemistry
sdl.degree.grantorUniversity of North Texas
sdl.degree.nameDoctor of Philosophy

Files

Copyright owned by the Saudi Digital Library (SDL) © 2025