Author
Listed:
- Hala K. Farag
(Inorganic Chemistry Department, National Research Centre, 33 El-Bohouth St. Dokki, Giza 12622, Egypt
Material Engineering Laboratory, Central Laboratories Network, National Research Centre, 33 El-Bohouth St. Dokki, Giza 12622, Egypt)
- Sherief A. Al Kiey
(Material Engineering Laboratory, Central Laboratories Network, National Research Centre, 33 El-Bohouth St. Dokki, Giza 12622, Egypt
Electrochemistry and Corrosion Laboratory, Physical Chemistry Department, National Research Centre, 33 El-Bohouth St. Dokki, Giza 12622, Egypt)
- Alaa A. Sery
(Inorganic Chemistry Department, National Research Centre, 33 El-Bohouth St. Dokki, Giza 12622, Egypt
Material Engineering Laboratory, Central Laboratories Network, National Research Centre, 33 El-Bohouth St. Dokki, Giza 12622, Egypt)
- Sherif Zein El Abdein
(Material Engineering Laboratory, Central Laboratories Network, National Research Centre, 33 El-Bohouth St. Dokki, Giza 12622, Egypt
Electrochemistry and Corrosion Laboratory, Physical Chemistry Department, National Research Centre, 33 El-Bohouth St. Dokki, Giza 12622, Egypt)
Abstract
Nanostructured Co 3 O 4 was synthesized via a sol–gel approach employing the ionic liquid 1-ethyl-3-methylimidazolium trifluoromethylsulfonate ([EMIm]TfO) and subsequently evaluated as a high-performance anode material for lithium-ion batteries. Ionic liquids, distinguished by their low volatility, high thermal stability, and tunable chemical properties, represent a greener alternative to conventional organic solvents for the synthesis of functional nanomaterials. The electrochemical performance of the as-prepared material was systematically assessed through galvanostatic charge–discharge cycling, cyclic voltammetry, and rate capability tests. The Co 3 O 4 electrode exhibited a high reversible capacity of approximately 1100 mAh g −1 after 50 cycles at a current density of 200 mA g −1 , along with excellent coulombic efficiency approaching ~100% after the initial cycles. Furthermore, the material demonstrated strong rate capability, delivering about 600 mAh g −1 at 1 C, and recovering its capacity upon returning to lower current densities. The improved electrochemical performance is primarily attributed to the nanoscale architecture induced by the ionic liquid-assisted synthesis, which facilitates rapid lithium-ion transport and effectively buffers volume variations during repeated cycling. Notably, the ionic liquid serves a dual function as both a green reaction medium and a structure-directing agent, enabling precise control over the material’s morphology and properties. This study demonstrates a versatile strategy for the rational design of potential transition-metal oxide anodes, paving the way for high-performance electrode materials. The findings contribute to the development of next-generation lithium-ion batteries tailored for clean and sustainable energy storage applications.
Suggested Citation
Hala K. Farag & Sherief A. Al Kiey & Alaa A. Sery & Sherif Zein El Abdein, 2026.
"Tailoring Lithium-Storage Performance of Co 3 O 4 Nanostructures via Ionic Liquid-Assisted Synthesis,"
Sustainability, MDPI, vol. 18(13), pages 1-13, July.
Handle:
RePEc:gam:jsusta:v:18:y:2026:i:13:p:6841-:d:1984050
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