Density functional theory study of Cu doped {0001} and {0112} surfaces of hematite for water splitting

Show simple item record

dc.contributor.author Simfukwe, Joseph
dc.contributor.author Mapasha, Refilwe Edwin
dc.contributor.author Artur Braun
dc.contributor.author Diale, M. (Mmantsae Moche)
dc.date.accessioned 2018-06-01T09:16:52Z
dc.date.available 2018-06-01T09:16:52Z
dc.date.issued 2018-02
dc.description.abstract Density Functional Theory (DFT) calculations study of Cu doped {0001} and {01-12} surfaces of hematite for enhanced water splitting have been carried out. The doping was restricted to planes in the vicinity of the surface, specifically from the top most layers to the third inner layer of Fe atoms. Thermodynamic stabilities were evaluated based on surface energies and formation energies. The evaluation of thermodynamic stabilities (negative formation energy values) shows that the systems are thermodynamically stable which suggest that they can be synthesized in the laboratory under favorable conditions. Doping on the top most layer yields the energetically most favorable structure. The calculated charge density difference plots showed the concentration of charge mainly at the top of the surface (termination region), and this charge depleted from the Cu atom to the surrounding Fe and O atoms. This phenomenon (concentration of charge at the top of the surface) is likely to reduce the distance moved by the charge carriers, decrease in charge recombination leading to facile transfer of charge to the adsorbate and, suggesting improved photoelectrochemical water oxidation activity of hematite. The analysis of electron electronic structure reveals that Cu doped surface systems does not only decrease the band gap but also leads to the correct conduction band alignment for direct water splitting without external bias voltage. en_ZA
dc.description.department Physics en_ZA
dc.description.librarian am2018 en_ZA
dc.description.sponsorship Dr. Richard Andrew (formerly at University of Pretoria and now at University of Johannesburg) is acknowledged for his initial guidance in the DFT. Thanks to the Copperbelt University for funding under the staff development fellowship fund. Further gratitude goes to the University of Pretoria and the Center for High Performance Computing (CHPC), Research Institute in Cape Town, South Africa for the cluster resources. AB and MD acknowledges financial support from the Swiss South African Joint Research Programme project “Production of Liquid Solar Fuels from CO2 and water: Using Renewable Energy Resources” (IZLSZ2-149031). AB is grateful from the Swiss Nano Tera project SHINE (Solar Hydrogen Integrated Nano Electrolyzer, 20NA21-145936). en_ZA
dc.description.sponsorship The Copperbelt University for funding under the staff development fellowship fund. AB and MD acknowledges financial support from the Swiss South African Joint Research Programme project “Production of Liquid Solar Fuels from CO2 and water: Using Renewable Energy Resources” (IZLSZ2-149031). AB is grateful from the Swiss Nano Tera project SHINE (Solar Hydrogen Integrated Nano Electrolyzer, 20NA21-145936). en_ZA
dc.description.uri https://www.cambridge.org/core/journals/mrs-advances en_ZA
dc.identifier.citation Simfukwe, J., Mapasha, R.E., Braun, A. & Diale, M. 2018, 'Density functional theory study of Cu doped {0001} and {0112} surfaces of hematite for water splitting', MRS Advances, vol. 3, no. 13, pp. 669-678. en_ZA
dc.identifier.issn 2059-8521 (online)
dc.identifier.other 10.1557/adv.2018.180
dc.identifier.uri http://hdl.handle.net/2263/65069
dc.language.iso en en_ZA
dc.publisher Cambridge University Press en_ZA
dc.rights © Materials Research Society 2018. This is an Open Access article, distributed under the terms of the Creative Commons Attribution licence (http://creativecommons.org/licenses/by/4.0/) en_ZA
dc.subject Water splitting en_ZA
dc.subject Surface en_ZA
dc.subject Density functional theory (DFT) en_ZA
dc.subject Transfer of charges en_ZA
dc.subject Photovoltaic en_ZA
dc.subject Photoelectrochemical water oxidation en_ZA
dc.subject Favorable conditions en_ZA
dc.subject Charge recombinations en_ZA
dc.subject Charge density difference en_ZA
dc.subject Thermodynamic stability en_ZA
dc.subject Hematite en_ZA
dc.subject Energy gap en_ZA
dc.subject Electronic structure en_ZA
dc.subject Doping (additives) en_ZA
dc.subject Copper en_ZA
dc.subject Atoms en_ZA
dc.title Density functional theory study of Cu doped {0001} and {0112} surfaces of hematite for water splitting en_ZA
dc.type Article en_ZA


Files in this item

This item appears in the following Collection(s)

Show simple item record