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Article Open Access 24 Sep 2026

Regulating Na+ vacancies and stabilizing lattice structure via Al3+/O2- doping for low-cost dry-air-stable NaCl-based solid electrolytes

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Energy Mater. 2026, 6, 600127. 10.20517/energymater.2026.211
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Abstract

Sodium chloride (NaCl) is attractive as a solid electrolyte because of its wide electrochemical stability window, excellent dry-air stability, favorable cathode compatibility, and low cost; however, its intrinsically low ionic conductivity has severely limited practical application. Here, we report an Al3+/O2- co-doping strategy that introduces Na+ vacancies and mixed Cl-/O2- anion environments into the NaCl lattice, thereby converting NaCl from a poor ionic conductor into a fast-ion-conducting solid electrolyte. The optimized composition, Na0.4625Al0.25Cl0.7875O0.2125, exhibits an ionic conductivity of 2.7 × 10-4 S cm-1 at 30 °C. Through combined X-ray diffraction, solid-state nuclear magnetic resonance, and pair distribution function analysis, Na0.4625Al0.25Cl0.7875O0.2125 is identified as a single-phase face-centered cubic structure (space group Fm-3m) that hosts a high concentration of Na+ vacancies (37.6%) at the 4a sites, creating a continuous 3D transmission network for rapid Na+ migration. Electrochemically, Na0.4625Al0.25Cl0.7875O0.2125 exhibits a wide stability window of 1.05~4.24 V vs. Na2Sn. In an all-solid-state cell with the configuration NaNi1/3Mn1/3Ti1/3O2||Na0.4625Al0.25Cl0.7875O0.2125||Na3PS4||Na2Sn, capacity retentions of 89% and 83% are achieved after 100 cycles over voltage windows of 2.4-4.2 and 2.4-4.4 V, respectively.

Keywords

Halide solid-state electrolytes, solid-state batteriescubic crystal structurelow costdry air stability
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Article
Open Access
Regulating Na+ vacancies and stabilizing lattice structure via Al3+/O2- doping for low-cost dry-air-stable NaCl-based solid electrolytes

How to Cite

Fu, C.; Lou, C.; Zhang, L.; Li, L.; Li, B.; Sun, Y.; Tang, M.; Shi, P.; Feng, X.; Xiang, H. Regulating Na+ vacancies and stabilizing lattice structure via Al3+/O2- doping for low-cost dry-air-stable NaCl-based solid electrolytes. Energy Mater. 2026, 6, 600127. https://dx.doi.org/10.20517/energymater.2026.211

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