Mopeli Fabiane
University of Pretoria
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Publication
Featured researches published by Mopeli Fabiane.
AIP Advances | 2013
Abdulhakeem Bello; Omobosede O. Fashedemi; Joel N. Lekitima; Mopeli Fabiane; David Dodoo-Arhin; Kenneth I. Ozoemena; Yury Gogotsi; A. T. Johnson; Ncholu I. Manyala
We have fabricated a symmetric electrochemical capacitor with high energy and power densities based on a composite of graphene foam (GF) with ∼80 wt% of manganese oxide (MnO2) deposited by hydrothermal synthesis. Raman spectroscopy and X-ray diffraction measurements showed the presence of nanocrystalline MnO2 on the GF, while scanning and transmission electron microscopies showed needle-like manganese oxide coated and anchored onto the surface of graphene. Electrochemical measurements of the composite electrode gave a specific capacitance of 240 Fg−1 at a current density of 0.1 Ag−1 for symmetric supercapacitors using a two-electrode configuration. A maximum energy density of 8.3 Whkg−1 was obtained, with power density of 20 kWkg−1 and no capacitance loss after 1000 cycles. GF is an excellent support for pseudo-capacitive oxide materials such as MnO2, and the composite electrode provided a high energy density due to a combination of double-layer and redox capacitance mechanisms.
AIP Advances | 2014
Damilola Y. Momodu; Abdulhakeem Bello; Julien K. Dangbegnon; Farshad Barzeger; Fatimeh Taghizadeh; Mopeli Fabiane; A. T. Charlie Johnson; Ncholu I. Manyala
In this paper, we demonstrate excellent pseudo-capacitance behavior of nickel-aluminum double hydroxide microspheres (NiAl DHM) synthesized by a facile solvothermal technique using tertbutanol as a structure-directing agent on nickel foam-graphene (NF-G) current collector as compared to use of nickel foam current collector alone. The structure and surface morphology were studied by X-ray diffraction analysis, Raman spectroscopy and scanning and transmission electron microscopies respectively. NF-G current collector was fabricated by chemical vapor deposition followed by an ex situ coating method of NiAl DHM active material which forms a composite electrode. The pseudocapacitive performance of the composite electrode was investigated by cyclic voltammetry, constant charge–discharge and electrochemical impedance spectroscopy measurements. The composite electrode with the NF-G current collector exhibits an enhanced electrochemical performance due to the presence of the conductive graphene layer on the nickel foam and gives a specific capacitance of 1252 F g−1 at a current density of 1 A g−1 and a capacitive retention of about 97% after 1000 charge–discharge cycles. This shows that these composites are promising electrode materials for energy storage devices.
AIP Advances | 2013
Mopeli Fabiane; Saleh Khamlich; Abdulhakeem Bello; Julien K. Dangbegnon; Damilola Y. Momodu; A. T. Charlie Johnson; Ncholu I. Manyala
We present a simple and very convincing approach to visualizing that subsequent layers of graphene grow between the existing monolayer graphene and the copper catalyst in chemical vapor deposition (CVD). Graphene samples were grown by CVD and then transferred onto glass substrates by the bubbling method in two ways, either direct-transfer (DT) to yield poly (methyl methacrylate) (PMMA)/graphene/glass or (2) inverted transfer (IT) to yield graphene/PMMA/glass. Field emission scanning electron microscopy (FE-SEM) and atomic force microscopy (AFM) were used to reveal surface features for both the DT and IT samples. The results from FE-SEM and AFM topographic analyses of the surfaces revealed the underlayer growth of subsequent layers. The subsequent layers in the IT samples are visualized as 3D structures, where the smaller graphene layers lie above the larger layers stacked in a concentric manner. The results support the formation of the so-called “inverted wedding cake” stacking in multilayer graphene growth.
Journal of Applied Physics | 2016
M.J. Madito; Abdulhakeem Bello; Julien K. Dangbegnon; C.J. Oliphant; W.A. Jordaan; Damilola Y. Momodu; T.M. Masikhwa; Farshad Barzegar; Mopeli Fabiane; Ncholu I. Manyala
A bilayer graphene film obtained on copper (Cu) foil is known to have a significant fraction of non-Bernal (AB) stacking and on copper/nickel (Cu/Ni) thin films is known to grow over a large-area with AB stacking. In this study, annealed Cu foils for graphene growth were doped with small concentrations of Ni to obtain dilute Cu(Ni) alloys in which the hydrocarbon decomposition rate of Cu will be enhanced by Ni during synthesis of large-area AB-stacked bilayer graphene using atmospheric pressure chemical vapour deposition. The Ni doped concentration and the Ni homogeneous distribution in Cu foil were confirmed with inductively coupled plasma optical emission spectrometry and proton-induced X-ray emission. An electron backscatter diffraction map showed that Cu foils have a single (001) surface orientation which leads to a uniform growth rate on Cu surface in early stages of graphene growth and also leads to a uniform Ni surface concentration distribution through segregation kinetics. The increase in Ni surf...
Journal of Materials Science | 2013
Abdulhakeem Bello; Katlego Makgopa; Mopeli Fabiane; D. Dodoo-Ahrin; Kenneth I. Ozoemena; Ncholu I. Manyala
Journal of Power Sources | 2015
Abdulhakeem Bello; Farshad Barzegar; Damilola Y. Momodu; Julien K. Dangbegnon; Fatemeh Taghizadeh; Mopeli Fabiane; Ncholu I. Manyala
Electrochimica Acta | 2013
Abdulhakeem Bello; Omobosede O. Fashedemi; Mopeli Fabiane; Joel N. Lekitima; Kenneth I. Ozoemena; Ncholu I. Manyala
Journal of Physics and Chemistry of Solids | 2014
Abdulhakeem Bello; Mopeli Fabiane; David Dodoo-Arhin; Kenneth I. Ozoemena; Ncholu I. Manyala
Journal of Physics and Chemistry of Solids | 2015
Farshad Barzegar; Abdulhakeem Bello; Mopeli Fabiane; Saleh Khamlich; Damilola Y. Momodu; Fatemeh Taghizadeh; Julien K. Dangbegnon; Ncholu I. Manyala
Journal of Alloys and Compounds | 2015
S. Khamlich; Z.Y. Nuru; Abdulhakeem Bello; Mopeli Fabiane; Julien K. Dangbegnon; Ncholu I. Manyala; M. Maaza