Abstract
Efficient electrode materials are crucial to meet the growing modern-day energy storage needs. In this context, a series of electrodes composed of Co3O4 with varying levels of Mn doping (4% and 8%) and varying rGO contents (4% and 8%) were prepared using a combination of hydrothermal and solvothermal methods. The samples were labeled as Co3O4 (CoO), Co2.96Mn0.04O4 (MDCoO-I), Co2.92Mn0.08O4 (MDCoO-II), Co2.92Mn0.08O4@4%rGO (MDCoO-III), and Co2.92Mn0.08O4@8%rGO (MDCoO-IV). Various tests confirmed the formation of the desired phase, with X-ray diffraction showing a cubic structure that remained consistent throughout the series. Following this survey, comprehensive electrochemical testing of all samples was conducted in a three-electrode setup to identify the best candidate for practical device applications. For example, MDCoO-IV showed enhanced ion transport properties, including ion conductivity (0.62 S cm−1), transference number (0.45), rate constant (2.21 × 10−7 cm s−1), exchange current density (0.021 A g−1), and a notable value of diffusion coefficient (5.51 × 10−13 m2 s−1), due to efficient coupling of conduction mechanism facilitated by 8% rGO inclusion across the pseudocapacitive enriched surface-active chemistry of Co2.92Mn0.08O4. Owing to the efficient ion-transport characteristics, an asymmetric assembly with full device testing using MDCoO-IV was subsequently established, demonstrating good rate performance with a specific capacitance of about 833.25 F g−1 and an energy density of 57.86 Wh kg−1 at 1250 W kg−1, thereby maintaining 87.27% after 10 000 cycles. The discovery of these features suggests that this material has potential for use in future energy storage devices.
Cite
CITATION STYLE
Ahmad, F., Shakoor, A., Iqbal, A., Mahmood, A., Al-Masry, W., Ahmad, F., & Atiq, S. (2026). Optimization of diffusion dynamics in Mn-doped Co3O4/rGO hybrid electrodes for efficient energy storage in asymmetric supercapacitors. Materials Advances, 7(5), 2937–2954. https://doi.org/10.1039/d5ma00752f
Register to see more suggestions
Mendeley helps you to discover research relevant for your work.