Nano-Structures & Nano-Objects· 2026Q1
Defect-engineered Y3 +-doped α-MnO2 /ZnO nanocomposite for enhanced electrochemical energy storage performance
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- Q1SCImago
- 2026year
Short summary
A Y3+-doped α-MnO2/ZnO nanocomposite synthesized via chemical precipitation achieves a specific capacitance of 952.91 F g−1 at 10 mV s−1 and a maximum capacitance of 1005.8 F g−1, outperforming undoped and singly doped counterparts.
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Key points
- Y3+-doped α-MnO2/ZnO nanocomposite synthesized via chemical precipitation.
- Characterization confirmed heterostructure with Y3+-induced lattice distortion, oxygen vacancies, and mixed Mn oxidation states.
- Achieved specific capacitance of 952.91 F g−1 at 10 mV s−1 and maximum capacitance of 1005.8 F g−1.
- Demonstrated good rate capability (80% capacitance retention at higher scan rates) and reduced charge-transfer resistance.
AI-generated from the title and abstract; the full text is not read.
Abstract
A Y 3+ -doped α-MnO 2 /ZnO nanocomposite was synthesised using a chemical precipitation method to enhance electrochemical energy storage performance. X-ray diffraction analysis confirmed the coexistence of tetragonal α-MnO 2 and hexagonal ZnO phases, with a reduced crystallite size of 13.54 nm attributed to Y 3+ -induced lattice distortion. X-ray photoelectron spectroscopy identified mixed Mn 3+ /Mn 4+ oxidation states together with defect-related oxygen species, indicating the formation of oxygen vacancies that contribute to improved electrical conductivity and redox activity. Transmission electron microscopy revealed a well-defined heterostructure with uniformly distributed nanoparticles (8–15 nm), promoting efficient electrode–electrolyte interaction. Electrochemical performance, evaluated in a three-electrode system, demonstrated that the Y 3+ -doped α-MnO 2 /ZnO nanocomposite outperforms both ZnO and Y-doped α-MnO 2 electrodes. Cyclic voltammetry yielded a specific capacitance of 952.91 F g −1 at 10 mV s −1 , while galvanostatic charge–discharge analysis produced a maximum capacitance of 1005.8 F g −1 . The electrode maintained approximately 80% of its capacitance at higher scan rates, reflecting strong rate capability. Electrochemical impedance spectroscopy indicated reduced charge-transfer resistance and improved ion diffusion kinetics. The enhanced electrochemical performance results from the combined effects of Y 3+ -induced defect engineering, oxygen vacancy formation, and efficient charge transport across the α-MnO 2 /ZnO heterointerface. These findings indicate that rare-earth doping, together with heterostructure design, offers an effective approach for developing high-performance electrode materials for supercapacitor applications.
The authors' abstract, as published at the source. Nano-Structures & Nano-Objects, 2026 · DOI ↗
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Electronic, Optical and Magnetic MaterialsMaterials Science