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February 6, 2026Small0 citationsOpen Access

Leidenfrost‐Assisted Synthesis of Indium‐Substituted Mixed Phosphate Cathodes with Superior Cycling Stability and Enhanced Sodium Storage Kinetics

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SSS. SinghaYSYuvraj SoniSPSharad Dnyanu Pinjari

Key Points

  • To develop a low-cost and high-performance sodium-ion battery cathode through a Leidenfrost-assisted synthesis method.
  • Used Leidenfrost-assisted synthesis for fabricating In-doped mixed phosphate cathodes.
  • Characterized the electrochemical performance, structural stability, and sodium diffusion properties.
  • Conducted density functional theory (DFT) calculations to analyze Na+ migration pathways.
  • Achieved a specific capacity of 129.3 mAh g−1 at 0.05 C with more than 10,000 cycles at 20 C.
  • Demonstrated enhanced Na+ diffusion and electrical conductivity in the In-doped cathode.
  • Confirmed excellent structural stability during (de)sodiation through XRD and XPS analyses.

Abstract

ABSTRACT The unavailability of high‐performance cathodes hinders large‐scale adoption of sodium‐ion batteries (NIBs). In this work, we report for the first time a Leidenfrost‐assisted synthesis as a low‐cost and scalable approach for designing In 3+ ‐doped mixed phosphate (PO 4 3− ‐P 2 O 7 4− ) cathodes. The strategic substitution of In 3+ at the Fe site induces lattice expansion, thereby facilitating enhanced Na + diffusion and improved electrochemical performance. The optimized cathode composition, Na 4 Fe 2.97 In 0.03 (PO 4 ) 2 P 2 O 7 (NFIPP03), exhibits exceptional electrochemical performance, with a specific capacity of 129.3 mAh g −1 at 0.05 C, corresponding to an energy density of 359 Wh kg −1 , and a stable cycling performance more than 10 000 cycles at 20 C. Temperature‐dependent magnetic susceptibility (M–T) and electron paramagnetic resonance (EPR) measurements reveal an enhanced spin state in NFIPP03 compared to the pristine sample, as well as improved electrical conductivity. Ex situ XRD and XPS analyses confirm excellent structural and chemical stability during (de)sodiation. Furthermore, density functional theory (DFT) calculations indicate significantly widened Na + migration pathways, reduced activation energy barrier, and an attenuated bandgap in NFIPP03 which corroborates our experimental observations. Our findings highlight the synthesis for developing cost‐effective, high‐performance iron‐based mixed‐phosphate cathodes, advancing the sustainability and scalability of NIB technology.

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Cite This Study

Singha et al. (2026) studied this question.

synapsesocial.com/papers/698585cb8f7c464f2300983dhttps://doi.org/10.1002/smll.202511474
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