Surface potential, fermi level and band gap energy of copper doped magnesium nickel ferrite nanoparticles
Date
2020Author
Osamong, Gideon
Kamweru, Paul Kuria
Gichumbi, Joel Mwangi
Ndiritu, Francis Gichuki
Metadata
Show full item recordAbstract
Optical, electrical, and electronic properties of materials are essential in the
fabrication of electronic devices. These properties can be improved through
doping and reduction of the size of a material to nanoscale. In this study,
copper doped magnesium-nickel (CuxMg1-xNiFe2O4, for x=0.00, 0.15, 0.30,
0.45, 0.60, 0.75, 1.00) ferrite nanoparticles were synthesized using the citragel auto combustion method. The electronic and optical properties were
evaluated using the scanning Kelvin probe microscopy (SKPM) and UVvisible, respectively. The UV-visible studies revealed that, the band gap
energy was at the range of 3.600-3.750 eV. The band gap was noted to
increase with copper content up to x=0.45 which then started to decrease.
The undoped sample displayed the lowest band gap energy in comparison
with the doped. SKPM analysis exhibited the surface potential in the range
4.361-5.002 eV for the area scan and 4.251-5.006 eV for the line scans for the
samples. The sample with x=0.75 showed a positive work function for both
area and line scans, and all the others had a negative work function. The
doped ferrite exhibited the properties that could be applied in optical devices,
storage devices, and recording devices.
© 2021 by SPC (Sami Publishing Company), Asian Journal of Nanoscience and
Materials, Reproduction is permitted for noncommercial purposes
Collections
- Chemistry [74]