Related Experiment Video
Updated: Jan 11, 2026

Stable Aqueous Suspensions of Manganese Ferrite Clusters with Tunable Nanoscale Dimension and Composition
Published on: February 5, 2022
High Permittivity and Supercapacitor Applications of Manganese Substitution in Biosynthesized-NPs Copper Spinel
Chedia Moualhi1, Walid Dachraoui2, Mohamed Annabi3
1Faculty of Science of Bizerte 7021, Laboratory of Physics of Materials: Structure and Property LR01ES15, University of Carthage, Carthage 1054, Tunisia.
Abstract:
Researchers have paid particular attention to transition metal oxides in recent years due to their higher specific capacitance and conductivity, making them ideal candidates for improved electrode materials. The present study successfully synthesized the spinel ferrites CuFe2-y Mn y O4 (where y = 0.0 and 0.5) using the hydrothermal biosynthesis route at low sintered temperature. Several techniques are used to analyze the synthesized samples: XRD, XPS, S/TEM, and BET surface area analyzer. Complex impedance analysis was employed to examine the electrical and dielectric properties of the CuFe2-y Mn y O4. The substitution of Fe by Mn significantly improved the electrical conductivity by about one hundred factors over a wide range of temperatures. Additionally, the studied compound exhibits a high dielectric constant around εr' ≈104, with an observed low dielectric loss. Via the obtained electrochemical results, it is found that the substituted sample (CuFe1.5Mn0.5O4) can be considered an effective material for the working electrode in an electrochemical supercapacitor. Thus, the CuFe1.5Mn0.5O4 nanoparticles demonstrate motivating electrochemical performance, such as a high specific capacitance of 396 F/g at 0.1 A/g, energy density of 49.5 Wh/kg, and strong cycling stability, retaining 78% capacity after 1000 cycles at 0.1 A/g.
Related Concept Videos
MOS Capacitor
The metal gate is typically made from highly conductive materials such as aluminum or polysilicon. Beneath the metal gate lies a thin layer of...
Colors and Magnetism
When atoms or molecules absorb light at the proper frequency, their electrons are excited to higher-energy orbitals. For many main group atoms and molecules, the absorbed photons are in the ultraviolet range of the electromagnetic spectrum, which cannot be detected by the human eye. For coordination compounds, the energy difference between the d orbitals often allows photons in the visible range to be absorbed and emitted, which is seen as colors by the human...

