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December 12, 2025ChemEngineering2 citationsOpen Access

Sustainable Solutions in Sodium-Ion Battery Cathode Materials: A Mini-Review of Strategies for Upgraded Performance Through Modification Techniques

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MAMudhar A. Al‐ObaidiFRFarhan Lafta RashidAAAhmed K. Ali

Key Points

  • The review aims to examine modification techniques to improve cathode materials for sodium-ion batteries.
  • Reviewed various modification techniques such as element doping, surface coating, and morphological control.
  • Analyzed electrochemical properties including specific capacity and cycling stability.
  • Discussed performance metrics for different materials like NaV1−xCrxPO4F and sodium iron–nickel hexacyanoferrate.
  • Element doping enhances electronic and ionic conductivity.
  • Surface coatings improve stability and reduce side reactions during cycling.
  • Morphological control facilitates efficient ion diffusion and enhances active material usage.

Abstract

Sodium-ion batteries (SIBs) have arisen as a potential alternative to lithium-ion batteries (LIBs) as a result of the abundant availability of sodium resources at low production costs, making them in line with the United Nations Sustainable Development Goals (SDGs) for affordable and clean energy (Goal 7). The current review intends to comprehensively analyse the various modification techniques deployed to improve the performance of cathode materials for SIBs, including element doping, surface coating, and morphological control. These techniques have demonstrated prominent improvements in electrochemical properties, such as specific capacity, cycling stability, and overall efficiency. The findings indicate that element doping can optimise electronic and ionic conductivity, while surface coatings can enhance stability in addition to mitigating side reactions throughout cycling. Furthermore, morphological control is an intricate technique to facilitate efficient ion diffusion and boost the use of active materials. Statistically, the Cr-doped NaV1−xCrxPO4F achieves a reversible capacity of 83.3 mAh/g with a charge–discharge performance of 90.3%. The sodium iron–nickel hexacyanoferrate presents a discharge capacity of 106 mAh/g and a Coulombic efficiency of 97%, with 96% capacity retention over 100 cycles. Furthermore, the zero-strain cathode Na4Fe7(PO4)6 maintains about 100% capacity retention after 1000 cycles, with only a 0.24% change in unit-cell volume throughout sodiation/desodiation. Notwithstanding these merits, this review ascertains the importance of ongoing research to resolve the associated challenges and unlock the full potential of SIB technology, paving the way for sustainable and efficient energy storage solutions that would aid the conversion into greener energy systems.

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Cite This Study

Al‐Obaidi et al. (2025) studied this question.

synapsesocial.com/papers/694019032d562116f28f6081https://doi.org/10.3390/chemengineering9060143
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