Tuning structural and microstrain features in Ni–Co substituted spinel ferrite nanoparticles for high-rate and stable pseudocapacitive energy storage

  • Saheed A. Adewinbi*
  • , Ghadah M. Al-Senani*
  • , Vusani M. Maphiri
  • , Olamide A. Akintayo
  • , Abigail T. Olaoluwa
  • , Salhah D. Al-Qahtani
  • , Lukman O. Animasahun
  • , Ncholu Manyala
  • *Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

2 Citations (Scopus)

Abstract

This study investigates Ni2+/Co2+ substitution effects on microstructure of spinel ferrite [Ni1-yCoyFe2O4 (0 ≤ y ≤ 1)] composite nanoparticles, prepared by sol-gel driven hydrolysis. Electron microscopy studies revealed the formations of uniformly distributed nanostructures with agglomerated and strongly interconnected tetragonal grains. X-ray diffraction (XRD) study confirmed the formation of single-phase cubic spinel structured nanocrystals in all compositions, with inconsistent variations of the lattice parameter and crystallite size as the Ni2+/Co2+ ratio changes. The Raman spectra revealed additional vibrational modes which confirmed the localized symmetry distortions, that could have occurred as a result of ionic radius mismatch of Ni2+/Co2+/Fe3+ cations at the octahedral sites. The vibrational stretching of metal-oxygen bond within the tetrahedral and octahedral sites were validated from infrared (FTIR) study. Charge storage studies also indicates that although, substituting Ni2+ with Co2+ in ferrite compounds can enhance electron hopping by occupying the octahedra B-sites, however, excessive Co content can create severe structural distortion by increasing the interplanar d-spacing, which reduces active sites and lowers electrical conductivity response. Thus, with its high specific capacity/capacitance (70.28 mAh g−1/632.4 Fg-1) at 0.5A/g, outstanding rate capability, exceptional cycling stability, and low charge transfer resistance, Ni0.5Co0.5Fe2O4 showed superior electrochemical performance among the Ni1-yCoyFe2O4 series, making it a suitable material for advanced energy storage applications.

Original languageEnglish
Article number101932
JournalJournal of the Indian Chemical Society
Volume102
Issue number9
DOIs
Publication statusPublished - Sept 2025
Externally publishedYes

Keywords

  • Cation substitution
  • CoFeO
  • Microstructure
  • NiFeO
  • Pseudocapacitive electrode
  • Specific capacity

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