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August 19, 2025Advanced Materials13 citations

Superstructure Engineering Enables NASICON‐Type Phosphate Cathodes with Increased Working Voltage and Energy Density

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EWEnhui WangCXChunliu XuMCMingzhe Chen

Key Points

  • The increased Fe2+/Fe3+ redox potential raised from 2.37 V to 2.82 V, improving energy density in sodium-ion batteries.
  • Energy density improved from 325 to 350 W h kg-1, resulting in better overall battery performance.
  • Superstructure engineering involves manipulating calcination temperature to improve ionic characteristics of Fe─O bonds.
  • Findings suggest potential for enhanced voltage and energy density in NASICON-type phosphate cathodes for sodium-ion batteries.

Abstract

Na+ Super Ionic CONductor (NASICON) -type iron-based phosphate cathode has attained extensive research interest due to its green, low cost, and superior rate capability for sodium-ion batteries (SIBs). However, owing to strong Fe─O covalent character in the NASICON frameworks, the low Fe2+/Fe3+ redox potential (<2. 5 V vs Na+/Na) has led to an undesirable energy density of phosphate cathode. Herein, superstructure engineering is employed to increase the ionic characteristics of Fe─O bonds and the working voltage of Fe2+/Fe3 redox couples. The combined analysis of advanced structural characterization and theoretical calculation indicates that the Fe3+ ions can migrate to Na+ vacancies to generate Fe/Naᵥ superstructure ordering by manipulating calcination temperature during synthesis. The Fe delocalization and electronic structure rearrangement can enlarge the energy gap between antibonding orbital and the Fermi energy level. As a concept proof, the as-prepared Na3VFe (PO4) 3 cathode with Fe/Naᵥ superlattice structure enables an increase in Fe2+/Fe3 redox couples from 2. 37 to 2. 82 V, accompanied by the energy density increase from 325 to 350 W h kg-1, compared with the conventional Na3VFe (PO4) 3 electrode. This work paves the way for increasing the working voltage and energy density of NASICON type iron-based phosphate cathodes for SIBs.

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Cite This Study

Wang et al. (2025) studied this question.

synapsesocial.com/papers/68af4754ad7bf08b1ead3f29https://doi.org/10.1002/adma.202512435
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