Electrochemical performance of hydrothermally synthesized Co-doped NiO electrodes: effect of propylene carbonate additive and doping concentration

Authors

  • Uba Nwankwo Department of Physics, Alex Ekwueme Federal University, Ndufu-Alike, Nigeria; Centre for Ionics Universiti Malaya, Department of Physics, Faculty of Science, Universiti Malaya, 50603 Kuala Lumpur, Malaysia
  • Raphael Mmaduka Obodo Department of Physics, Federal University of Technology, Owerri, Imo State, Nigeria
  • Precious Nkechinyere Kalu Department of Physics, Alex Ekwueme Federal University, Ndufu-Alike, Nigeria
  • Chinedum Obed Dike Department of Physics, Alex Ekwueme Federal University, Ndufu-Alike, Nigeria
  • John Elom Ekpe Department of Physics, Alex Ekwueme Federal University, Ndufu-Alike, Nigeria
  • John Ubi Arikpo Department of Physics, Alex Ekwueme Federal University, Ndufu-Alike, Nigeria
  • Kasi Ramesh Centre for Ionics Universiti Malaya, Department of Physics, Faculty of Science, Universiti Malaya, 50603 Kuala Lumpur, Malaysia
  • Subramaniam Ramesh Centre for Ionics Universiti Malaya, Department of Physics, Faculty of Science, Universiti Malaya, 50603 Kuala Lumpur, Malaysia
  • Fabian Ifeanyichukwu Ezema Department of Physics and Astronomy, University of Nigeria, Nsukka, Nigeria

Keywords:

Transition metal oxide, Electrode material, Hydrothermal method, Supercapacitor, Propylene carbonate

Abstract

Transition metal oxides have received substantial attention because of their versatile applications in photocatalysis, electronics, and energy storage systems such as batteries and pseudocapacitors. Owing to their variable oxidation states, they are known as redox-active materials, which give rise to battery-type and pseudocapacitor-type electrodes for energy storage devices. In this work, 10%, 20%, and 30% cobalt-doped nickel oxide and 30% cobalt-doped nickel oxide mixed with propylene carbonate (PC) were synthesized via the hydrothermal method to produce electrode materials for a supercapacitor. The electrode materials were characterized by X-ray diffraction (XRD), Fourier transform infrared spectroscopy (FTIR), field-emission scanning electron microscopy--energy-dispersive X-ray spectroscopy (FESEM--EDX), and Brunauer--Emmett--Teller (BET) analyses. The obtained XRD and EDX spectra confirmed crystallinity and elemental composition. The BET surface area of 30% cobalt-doped nickel oxide mixed with PC was estimated to be 17.67 m2 g-1, which is larger than that of 30% cobalt-doped nickel oxide, with a surface area of 11.05 m2 g-1. The electrode fabricated with 30% cobalt-doped nickel oxide showed better performance, and its electrochemical performance was further enhanced with the PC additive. The specific capacitance of the 30% cobalt-doped nickel oxide with PC additive reached 551 F g-1 at 0.1 A g-1 and 661 F g-1 at 5 mV s-1. The obtained results suggest that new-generation electrochemical electrodes can be optimized by adding PC during synthesis.

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Published

2026-10-02

How to Cite

Electrochemical performance of hydrothermally synthesized Co-doped NiO electrodes: effect of propylene carbonate additive and doping concentration. (2026). African Scientific Reports, 5(3), 567. https://doi.org/10.46481/asr.2026.5.3.567

How to Cite

Electrochemical performance of hydrothermally synthesized Co-doped NiO electrodes: effect of propylene carbonate additive and doping concentration. (2026). African Scientific Reports, 5(3), 567. https://doi.org/10.46481/asr.2026.5.3.567

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