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April 29, 20260 citationsOpen Access

Entropy-driven mechanisms in P2-type layered oxide cathodes for sodium-ion batteries: new insights from first-principles and electrochemical analysis

AMArianna MassaroSPSilvia PorporatoMBMiriam Botros

Key Points

  • This research aims to explore how configurational entropy affects the structural and electronic properties of P2-type layered oxides for sodium-ion batteries.
  • Employ first-principles modeling and electrochemical measurements to analyze different entropy compositions.
  • Compare low-, medium-, and high-entropy P2-type Na$_x$MO$_2$ layered oxides.
  • Perform defect-formation analyses to assess transition-metal migration and antisite formation.
  • High configurational entropy reduces transition-metal migration and phase transitions, improving cycling stability.
  • Medium- and high-entropy materials show superior capacity retention compared to low-entropy counterparts.
  • Using ionic-liquid electrolyte enhances performance by mitigating deleterious effects like Mn dissolution.

Abstract

P2-type NaₓMO₂ layered oxides (x < 1) are highly promising cathodes for Na-ion batteries (NIBs) but suffer from phase transitions, transition-metal (TM) migration, and structural distortions that limit cycling stability. Here, we combine first-principles modeling and electrochemical measurements to elucidate how configurational entropy governs their structural and electronic response. By comparing low-, medium-, and high-entropy compositions, we show that higher configurational entropy mitigates TM-centered octahedral distortions, suppresses shear-type deformations associated with P2 → O2 transitions via layer gliding, and distributes redox activity across multiple cations (Ni, Co, Fe), avoiding local over-oxidation. Defect-formation analyses reveal that high-entropy mixing significantly discourages out-of-layer TM migration, reducing TM/Naₕ₀₂ antisite formation and stabilizing the layered framework upon deep desodiation. Consistently, medium- and high-entropy materials exhibit superior capacity retention and structural reversibility compared to the low-entropy analogue, with further performance enhancement when using room-temperature ionic-liquid (RTIL) -based NaFSI-Pyr14 FSI electrolyte, which mitigates Mn dissolution and accounts for enhanced efficiency upon cycling. These findings demonstrate that configurational entropy is a powerful design parameter for achieving robust, high-performance P2-type layered cathodes and provide clear guidelines for entropy-assisted materials engineering in nextgeneration NIBs.

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Cite This Study

Massaro et al. (2026) studied this question.

synapsesocial.com/papers/69f1a033edf4b46824806d31https://doi.org/10.5445/ir/1000192648
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