<p>Solid-state electrolytes are gaining attention as safer alternatives to conventional liquid electrolytes in lithium- and sodium-ion batteries, particularly for large-scale applications. Among them, sodium-based systems offer cost and resource advantages. Halide-based solid electrolytes allow compositional tuning via homovalent halide substitution, which has been shown to enhance ionic conductivity in both Li⁺ and Na⁺ systems. Recent studies on NaAlBr<sub>4</sub> suggest that Na<sup>+</sup> mobility can be improved through halide substitution and non-stoichiometry. However, the effects of Br⁻/I⁻ exchange in sodium aluminum halides remain largely unexplored. This study provides the effects of Br<sup>−</sup> substitution on the conduction properties of NaAlI<sub>4</sub>, particularly for the activation energy for ion conduction. Br⁻ substitution was systematically investigated across the full compositional range. A complete solid solution was confirmed, accompanied by lattice shrinkage with increasing Br⁻ content, reflecting the replacement of larger I⁻ ions with smaller Br⁻ ions. The activation energy for Na⁺ conduction varied with Br⁻ fraction, peaking at Br⁻/I⁻ = 1.0. From the variation in lattice parameters, it was suggested that the NaI6 prism undergoes a pincer-like deformation rather than uniform shrinkage, with the strongest deviation from ideality observed in the Br⁻ 40–70% range. This structural distortion was correlated with increased hopping barriers, likely hindering Na⁺ migration along the <i>a</i> and <i>b</i> axes. Although Br⁻ substitution alone was not favorable for Na⁺ conduction, the introduction of excess Na⁺ significantly enhanced conductivity, reaching 1.5 × 10⁻<sup>5</sup> S/cm at 303&#xa0;K. These findings highlight the interplay between halide composition, lattice distortion, and ionic transport, offering insights for the design of high-performance Na⁺ conductors.</p>

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Compositional tuning of NaAlI4: effects of Br⁻ substitution and excess Na+ on ionic conductivity

  • Reona Miyazaki,
  • Keita Fukushima,
  • Takehiko Hihara

摘要

Solid-state electrolytes are gaining attention as safer alternatives to conventional liquid electrolytes in lithium- and sodium-ion batteries, particularly for large-scale applications. Among them, sodium-based systems offer cost and resource advantages. Halide-based solid electrolytes allow compositional tuning via homovalent halide substitution, which has been shown to enhance ionic conductivity in both Li⁺ and Na⁺ systems. Recent studies on NaAlBr4 suggest that Na+ mobility can be improved through halide substitution and non-stoichiometry. However, the effects of Br⁻/I⁻ exchange in sodium aluminum halides remain largely unexplored. This study provides the effects of Br substitution on the conduction properties of NaAlI4, particularly for the activation energy for ion conduction. Br⁻ substitution was systematically investigated across the full compositional range. A complete solid solution was confirmed, accompanied by lattice shrinkage with increasing Br⁻ content, reflecting the replacement of larger I⁻ ions with smaller Br⁻ ions. The activation energy for Na⁺ conduction varied with Br⁻ fraction, peaking at Br⁻/I⁻ = 1.0. From the variation in lattice parameters, it was suggested that the NaI6 prism undergoes a pincer-like deformation rather than uniform shrinkage, with the strongest deviation from ideality observed in the Br⁻ 40–70% range. This structural distortion was correlated with increased hopping barriers, likely hindering Na⁺ migration along the a and b axes. Although Br⁻ substitution alone was not favorable for Na⁺ conduction, the introduction of excess Na⁺ significantly enhanced conductivity, reaching 1.5 × 10⁻5 S/cm at 303 K. These findings highlight the interplay between halide composition, lattice distortion, and ionic transport, offering insights for the design of high-performance Na⁺ conductors.