Density functional theory study of TiO2 Brookite (100), (110) and (210) surfaces doped with ruthenium (RU) and platinum (Pt) for application in dye sensitized solar cell

dc.contributor.advisorMaluta, E.N.
dc.contributor.advisorMaphanga, R. R.
dc.contributor.authorDima, Ratshilumela Steve
dc.date2017
dc.date.accessioned2018-05-26T09:59:01Z
dc.date.available2018-05-26T09:59:01Z
dc.date.issued2018-05-18
dc.descriptionMSc (Physics)
dc.descriptionDepartment of Physics
dc.description.abstractSince the discovery of water photolysis on a TiO2 electrode by Fujishima and Honda in 1972, TiO2 has attracted extensive attention as an ideal photocatalytic material because of its excellent properties such as high activity, good stability, nontoxicity and low cost. Hence, it has been widely used in the fields of renewable energy and ecological environmental protection. However, as a wide band gap oxide semiconductor (Eg = 3.14 eV), brookite TiO2 can only show photocatalytic activity under UV light irradiation (λ < 387.5 nm) that accounts for only a small portion of solar energy (approximately 5 %), in contrast to visible light for a major part of solar energy (approximately 45 %). Therefore, effectively utilizing sunlight is the most challenging subject for the extensive application of TiO2 as a photocatalyst. Due to the unique d electronic configuration and spectral characteristics of transition metals, transition metal doping is one of the most effective approaches to extend the absorption edge of TiO2 to the visible light region. This method of doping either inserts a new band into the original band gap or modifies either the conduction band or valence band, improving the photocatalytic activity of TiO2 to some degree. In this work, the structural, electronic and optical properties of doped and undoped TiO2 (100), (110) and (210) surfaces were performed using first principle calculations based on DFT using a plane-wave pseudopotential method. The generalized gradient approximation was used in the scheme of Perdew-Burke-Ernzerhof to describe the exchangecorrelation functional as implemented in the Cambridge Sequential Total Energy Package code in the Materials Studio of BIOVIA. The metal dopants shift the absorption to longer wavelengths and improves optical absorbance in visible and near- IR region. The un-doped (210) surface showed some activity in the visible and near IR region.en_US
dc.description.sponsorshipNRFen_US
dc.format.extent1 online resource (xi, 77 leaves : illustrations (some color)
dc.identifier.apacitationDima, R. S. (2018). <i>Density functional theory study of TiO2 Brookite (100), (110) and (210) surfaces doped with ruthenium (RU) and platinum (Pt) for application in dye sensitized solar cell</i>. (). . Retrieved from https://hdl.handle.net/11602/1095en_ZA
dc.identifier.chicagocitationDima, Ratshilumela Steve. <i>"Density functional theory study of TiO2 Brookite (100), (110) and (210) surfaces doped with ruthenium (RU) and platinum (Pt) for application in dye sensitized solar cell."</i> ., , 2018. https://hdl.handle.net/11602/1095en_ZA
dc.identifier.citationDima, R.S. 2018. Density functional theory study of TiO2 Brookite (100), (110) and (210) surfaces doped with ruthenium (RU) and platinum (Pt) for application in dye sensitized solar cell. . . https://hdl.handle.net/11602/1095en_ZA
dc.identifier.ris TY - Dissertation AU - Dima, Ratshilumela Steve AB - Since the discovery of water photolysis on a TiO2 electrode by Fujishima and Honda in 1972, TiO2 has attracted extensive attention as an ideal photocatalytic material because of its excellent properties such as high activity, good stability, nontoxicity and low cost. Hence, it has been widely used in the fields of renewable energy and ecological environmental protection. However, as a wide band gap oxide semiconductor (Eg = 3.14 eV), brookite TiO2 can only show photocatalytic activity under UV light irradiation (λ < 387.5 nm) that accounts for only a small portion of solar energy (approximately 5 %), in contrast to visible light for a major part of solar energy (approximately 45 %). Therefore, effectively utilizing sunlight is the most challenging subject for the extensive application of TiO2 as a photocatalyst. Due to the unique d electronic configuration and spectral characteristics of transition metals, transition metal doping is one of the most effective approaches to extend the absorption edge of TiO2 to the visible light region. This method of doping either inserts a new band into the original band gap or modifies either the conduction band or valence band, improving the photocatalytic activity of TiO2 to some degree. In this work, the structural, electronic and optical properties of doped and undoped TiO2 (100), (110) and (210) surfaces were performed using first principle calculations based on DFT using a plane-wave pseudopotential method. The generalized gradient approximation was used in the scheme of Perdew-Burke-Ernzerhof to describe the exchangecorrelation functional as implemented in the Cambridge Sequential Total Energy Package code in the Materials Studio of BIOVIA. The metal dopants shift the absorption to longer wavelengths and improves optical absorbance in visible and near- IR region. The un-doped (210) surface showed some activity in the visible and near IR region. DA - 2018-05-18 DB - ResearchSpace DP - Univen KW - Water photolysics KW - Electrode KW - T1O2 KW - Photocatalytic KW - Brookite LK - http://univendspace.univen.ac.za PY - 2018 T1 - Density functional theory study of TiO2 Brookite (100), (110) and (210) surfaces doped with ruthenium (RU) and platinum (Pt) for application in dye sensitized solar cell TI - Density functional theory study of TiO2 Brookite (100), (110) and (210) surfaces doped with ruthenium (RU) and platinum (Pt) for application in dye sensitized solar cell UR - https://hdl.handle.net/11602/1095 ER - en_ZA
dc.identifier.urihttps://hdl.handle.net/11602/1095
dc.identifier.vancouvercitationDima RS. Density functional theory study of TiO2 Brookite (100), (110) and (210) surfaces doped with ruthenium (RU) and platinum (Pt) for application in dye sensitized solar cell. []. , 2018 [cited yyyy month dd]. Available from: https://hdl.handle.net/11602/1095en_ZA
dc.language.isoenen_US
dc.rightsUniversity of Venda
dc.subjectWater photolysicsen_US
dc.subjectElectrodeen_US
dc.subjectT1O2en_US
dc.subjectPhotocatalyticen_US
dc.subjectBrookiteen_US
dc.subject.ddc541.395
dc.subject.lcshPhotocatalysis
dc.subject.lcshMaterials-- Technological innovations
dc.subject.lcshCatalysis
dc.subject.lcshElectrocatalysis
dc.subject.lcshSpillover (Chemistry)
dc.titleDensity functional theory study of TiO2 Brookite (100), (110) and (210) surfaces doped with ruthenium (RU) and platinum (Pt) for application in dye sensitized solar cellen_US
dc.typeDissertationen_US

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